# AC/DC DIN Rail Power Supply (PSU), 24 - 29.5 VDC, Laboratory Equipment, 1 Output, 960 W, 24 VDC

![Product image](https://novapart.co/image/farnell:3976663/)

**URL**: https://novapart.co/products/1151047/ac-dc-din-rail-power-supply-psu-24-295-vdc
**SKU**: 1151047
**Manufacturer**: PHOENIX CONTACT
**Price**: €507.5500
**Stock**: 10+
**Lead Time**: 36 days (indicative)

## Specifications

| Parameter | Value |
|---|---|
| Svhc | Lead (04-Feb-2026) |
| Product Range | QUINT POWER Series |
| No. Of Outputs | 1 Output |
| Output Power Max | 960W |
| Current, Output 4 | - |
| Input Voltage Vac | 400V AC to 500V AC |
| Power Supply Output Type | Adjustable, Fixed |
| Output Current - Output 1 | 40A |
| Output Current - Output 2 | - |
| Output Current - Output 3 | - |
| Output Voltage - Output 1 | 24VDC |
| Output Voltage - Output 2 | - |
| Output Voltage - Output 3 | - |
| Output Voltage - Output 4 | - |
| Power Supply Applications | Laboratory Equipment |

## Datasheet

📄 [Download PDF](https://novapart.co/datasheet/farnell:3976663/)

## **QUINT4-PS/3AC/24DC/40/IOL** 

## **Power supply unit** 

Data sheet 109980_en_01 © PHOENIX CONTACT 2022-02-03 

## **1 Description** 

QUINT POWER power supplies with SFB Technology and preventive function monitoring ensure superior system availability. 

## **Powerful** 

- SFB Technology: 6 times the nominal current for 15 ms 

- Power reserves: 

   - Static boost of up to 125% (PN) for a sustained period Dynamic boost of up to 200% (PN) for 5 s 

## **Communicative** 

- Use in all industrial networks with integrated IO-Link interface 

- System integration with direct connection to the QUINT UPS or the CAPAROC circuit breaker system 

## **Robust** 

- Mains buffering ≥ 20 ms 

- High degree of electrical immunity, thanks to integrated gas discharge tube (6 kV) 

## **Preventive** 

- Comprehensive signaling: Relay contact, LED bar graph 

|**Technical data (short form)**|**Technical data (short form)**|
|---|---|
|Input voltage range|3x 400 V AC ... 500 V AC|
||-20 % ... +10 %|
||2x 400 V AC ... 500 V AC|
||-10 % ... +10 %|
|Mains buffering|typ. 26 ms (3x 400 V AC)|
||typ. 26 ms (3x 480 V AC)|
|Nominal output voltage (UN)|24 V DC|
|Setting range of the output voltage<br>(USet)|24 V DC ... 29.5 V DC|
|Nominal output current (IN)|40 A|
|Static Boost (IStat.Boost)|45 A|
|Dynamic Boost (IDyn.Boost)<br>Selective Fuse Breaking (ISFB)|60 A (5 s)<br>215 A (15 ms)|
|Output power (PN)<br>Output power (PStat. Boost)|960 W<br>1080 W|
|Output power (PDyn. Boost)|1440 W|
|Efficiency|typ. 95.4 % (400 V AC)|
||typ. 95.4 % (480 V AC)|
|Residual ripple<br>MTBF (IEC 61709, SN 29500)<br>Ambient temperature (operation)|< 50 mVPP<br>> 517000 h (40 °C)<br>-25 °C ... 70 °C<br>-40°C (startup type tested)|
||> 60 °C Derating: 2,5 %/K|
|Dimensions W/H/D|120 mm / 130 mm / 125 mm|
|Weight|2.6 kg|



- Needs-based maintenance and effective replacementpart procurement with information on the remaining service life 

All technical specifications are nominal values and refer to a room temperature of 25 °C and 70 % relative humidity at 100 m above sea level. 

**QUINT4-PS/3AC/24DC/40/IOL** 

|**2**|**Table of contents**|
|---|---|
|1|Description .............................................................................................................................. 1|
|2|Table of contents..................................................................................................................... 2|
|3|Ordering data .......................................................................................................................... 3|
|4|Technical data ......................................................................................................................... 5|
|5|Safety and installation notes.................................................................................................. 16|
|6|High-voltage test (HIPOT) ..................................................................................................... 18|
|7|Structure of the power supply ................................................................................................ 20|
|8|Mounting/removing the power supply.................................................................................... 23|
|9|Device connection terminal blocks ........................................................................................ 26|
|10|Output characteristic curves .................................................................................................. 28|
|11|IO-Link................................................................................................................................... 31|
|12|System communication ......................................................................................................... 32|
|13|Boost currents ....................................................................................................................... 35|
|14|SFB Technology.................................................................................................................... 37|
|15|Signaling................................................................................................................................ 42|
|16|Operating modes................................................................................................................... 49|
|17|Derating................................................................................................................................. 51|
|18|Attachment – Register tables................................................................................................. 55|



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**QUINT4-PS/3AC/24DC/40/IOL** 

## **3 Ordering data** 

|**Description**|**Type**|**Item no.**|**Pcs./Pkt.**|
|---|---|---|---|
|Primary-switched power supply unit, QUINT POWER,|QUINT4-PS/3AC/24DC/40/|1151047|1|
|Screw connection, DIN rail mounting, input: 3-phase,|IOL|||
|output: 24 V DC / 40 A||||
|||||
|**Accessories**|**Type**|**Item no.**|**Pcs./Pkt.**|
|Universal wall adapter for securely mounting the device in|UWA 182/52|2938235|1|
|the event of strong vibrations. The device is screwed||||
|directly onto the mounting surface. The universal wall||||
|adapter is attached on the top/bottom.||||
|2-piece universal wall adapter for securely mounting the|UWA 130|2901664|1|
|device in the event of strong vibrations. The profiles that||||
|are screwed onto the side of the device are screwed||||
|directly onto the mounting surface. The universal wall||||
|adapter is attached on the left/right.||||
|Fuse, for the photovoltaics industry according to UL 2579,|FUSE 10,3X38  6A PV A|3062778|10|
|nominal current: 6 A, length: 38 mm, diameter: 10.3 mm,||||
|color: white||||
|Plug-in device protection, according to type 3/class III, for|PLT-SEC-T3-3S-230-FM|2905230|1|
|3-phase power supply networks with separate N and PE||||
|(5-conductor system: L1, L2, L3, N, PE), with integrated||||
|surge-proof fuse and remote indication contact.||||
|Type 3 surge protection, consisting of protective plug and|PLT-SEC-T3-24-FM-PT|2907925|5|
|base element, with integrated status indicator and remote||||
|signaling for single-phase power supply networks.||||
|Nominal voltage: 24 V AC/DC||||
|Type 3 surge protection, consisting of protective plug and|PLT-SEC-T3-24-FM-UT|2907916|5|
|base element, with integrated status indicator and remote||||
|signaling for single-phase power supply networks.||||
|Nominal voltage: 24 V AC/DC||||
|Electronic circuit breaker,  number of positions: 1,|CBMC E4 24DC/1-4A NO|2906031|1|
|mounting type: DIN rail: 35 mm, Color: light grey||||
|RAL 7035||||
|Electronic circuit breaker,  number of positions: 1,|CBMC E4 24DC/1-10A NO|2906032|1|
|mounting type: DIN rail: 35 mm, Color: light grey||||
|RAL 7035||||
|Electronic circuit breaker,  number of positions: 1,|CBMC E4 24DC/1-4A+ IOL|2910410|1|
|mounting type: DIN rail: 35 mm, Color: light grey||||
|RAL 7035||||
|Electronic circuit breaker,  number of positions: 1,|CBMC E4 24DC/1-10A IOL|2910411|1|
|mounting type: DIN rail: 35 mm, Color: light grey||||
|RAL 7035||||
|Electronic circuit breaker,  number of positions: 1,|CBM E4 24DC/0.5-10A NO-R|2905743|1|
|mounting type: DIN rail: 35 mm, Color: light grey||||
|RAL 7035||||



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**QUINT4-PS/3AC/24DC/40/IOL** 

|**Accessories**|**Type**|**Item no.**|**Pcs./Pkt.**|
|---|---|---|---|
|Electronic circuit breaker,  number of positions: 1,|CBM E8 24DC/0.5-10A NO-R|2905744|1|
|mounting type: DIN rail: 35 mm, Color: light grey||||
|RAL 7035||||
|End clamp, material: Aluminum, color: silver|E/AL-NS 35|1201662|10|
|QUINT UPS, IQ Technology, DIN rail mounting, input: 24|QUINT4-UPS/24DC/24DC/40|2907077|1|
|V DC, output: 24 V DC / 40 A, charging current: 5 A||||
|QUINT UPS, IQ Technology, EtherCAT®, DIN rail|QUINT4-UPS/24DC/24DC/|2907081|1|
|mounting, input: 24 V DC, output: 24 V DC / 40 A, charging|<br>40/EC|||
|current: 5 A||||
|QUINT UPS, IQ Technology, EtherNet/IP™, DIN rail|QUINT4-UPS/24DC/24DC/|2907080|1|
|mounting, input: 24 V DC, output: 24 V DC / 40 A, charging|<br>40/EIP|||
|current: 5 A||||
|QUINT UPS, IQ Technology, USB (Modbus/RTU), DIN|QUINT4-UPS/24DC/24DC/|2907078|1|
|rail mounting, input: 24 V DC, output: 24 V DC / 40 A,|40/USB|||
|charging current: 5 A||||
|QUINT UPS, IQ Technology, PROFINET, DIN rail|QUINT4-UPS/24DC/24DC/|2907079|1|
|mounting, input: 24 V DC, output: 24 V DC / 40 A, charging|<br>40/PN|||
|current: 5 A||||
|Power module,  mounting type: pluggable onto|CAPAROC PM PN|1110986|1|
|CAPAROC CRcurrent rail, Color: light grey  RAL 7035||||
|Busbar,  mounting type: DIN rail: 35 mm, Color: light grey|CAPAROC CR 8|1115672|12|
|RAL 7035||||
|Electronic circuit breaker,  number of positions: 1,|CAPAROC E2 12-24DC/2-|1110984|1|
|mounting type: pluggable onto CAPAROC CRcurrent|10A|||
|rail, Color: light grey  RAL 7035||||
|The range of accessories is being continuously extended. The current range of accessories|||can be found in|
|the download area for the product.||||



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**QUINT4-PS/3AC/24DC/40/IOL** 

## **4 Technical data** 

|**Input data**|||
|---|---|---|
||Unless otherwise stated, all data applies for 25°C ambient temperature, 400 V AC input voltage, and nominal||
||output current (IN).||
|Input voltage range||3x 400 V AC ... 500 V AC -20 % ... +10 %|
|||2x 400 V AC ... 500 V AC -10 % ... +10 %|
|||± 260 V DC ... 300 V DC -13 % ... +30 %|
|Frequency|range (fN)|50 Hz ... 60 Hz -10 % ... +10 %|
|Network type||Star network|
|Current draw typ.||3x 1.8 A (400 V AC)|
|||3x 1.5 A (480 V AC)|
|||3x 1.5 A (500 V AC)|
|||2x 3 A (400 V AC)|
|||2x 2.5 A (480 V AC)|
|||2x 2.4 A (500 V AC)|
|||2.2 A (±260 V DC)|
|||1.9 A (±300 V DC)|
||The specified values for current consumption apply for 3AC operation in static boost and 2AC operation at||
||nominal power.||
|Discharge current to PE||< 3.5 mA|
|typical||1 mA (550 V AC, 60 Hz)|
|Mains buffering||typ. 26 ms (3x 400 V AC)|
|||typ. 26 ms (3x 480 V AC)|
|Switch-on time||< 1 s|
|Typical response time from SLEEP MODE||300 ms|
|Protective circuit||Transient surge protection Varistor, gas-filled surge arrester|
|Inrush current limitation after 1 ms||1.5 A|
|Inrush current integral (I2t)||< 0.06 A2s|
||During the first few microseconds, the current flow into the filter capacitors is excluded.||
||The SCCR value (short-circuit current rating)|of the power supply unit corresponds to the SCCR value of the|
||backup fuse (see input protection table).||
||The external backup fuse must be approved for the (AC/DC) supply voltage used and the voltage level.||



|**Input data**|||
|---|---|---|
||Unless otherwise stated, all data applies for 25°C ambient temperature, 400 V AC input voltage, and nominal||
||output current (IN).||
|Input voltage range||3x 400 V AC ... 500 V AC -20 % ... +10 %|
|||2x 400 V AC ... 500 V AC -10 % ... +10 %|
|||± 260 V DC ... 300 V DC -13 % ... +30 %|
|Frequency|range (fN)|50 Hz ... 60 Hz -10 % ... +10 %|
|Network type||Star network|
|Current draw typ.||3x 1.8 A (400 V AC)|
|||3x 1.5 A (480 V AC)|
|||3x 1.5 A (500 V AC)|
|||2x 3 A (400 V AC)|
|||2x 2.5 A (480 V AC)|
|||2x 2.4 A (500 V AC)|
|||2.2 A (±260 V DC)|
|||1.9 A (±300 V DC)|
||The specified values for current consumption apply for 3AC operation in static boost and 2AC operation at||
||nominal power.||
|Discharge current to PE||< 3.5 mA|
|typical||1 mA (550 V AC, 60 Hz)|
|Mains buffering||typ. 26 ms (3x 400 V AC)|
|||typ. 26 ms (3x 480 V AC)|
|Switch-on time||< 1 s|
|Typical response time from SLEEP MODE||300 ms|
|Protective circuit||Transient surge protection Varistor, gas-filled surge arrester|
|Inrush current limitation after 1 ms||1.5 A|
|Inrush current integral (I2t)||< 0.06 A2s|
||During the first few microseconds, the current flow into the filter capacitors is excluded.||
||The SCCR value (short-circuit current rating)|of the power supply unit corresponds to the SCCR value of the|
||backup fuse (see input protection table).||
||The external backup fuse must be approved for the (AC/DC) supply voltage used and the voltage level.||



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**QUINT4-PS/3AC/24DC/40/IOL** 

|**Input protection , AC/DC ( to be connected externally upstream )**|**Input protection , AC/DC ( to be connected externally upstream )**|**Input protection , AC/DC ( to be connected externally upstream )**|**Input protection , AC/DC ( to be connected externally upstream )**|**Input protection , AC/DC ( to be connected externally upstream )**|**Input protection , AC/DC ( to be connected externally upstream )**|**Input protection , AC/DC ( to be connected externally upstream )**||
|---|---|---|---|---|---|---|---|
|**Input current IIn**<br>**Input protection**||**Circuit breaker**||||**Neozed fuse**<br>**or equivalent**|**Power switch**|
|**Characteristics**|**A**|**B**|**C**|**D**|**K**|**gG**|**≤ 13 x IIn**<br>**(maximum magnetic tripping)**|
|4 A||||||||
|6 A||||||-||
|8 A||||||-||
|10 A||||||-||
|13 A||||||-|-|
|16 A||||||-|-|
|20 A||||-||-|-|
|||||||||
|**Input protection ,  ( to be**||**connected externally**||||**upstream )**||
|Recommended breaker for||input protection||||1x 6 A (10 x 38 mm, 30|kA L/R = 2 ms) , ≥ 1000 V DC|



|**Electric strength of the insulation**|**Electric strength of the insulation**|**Electric strength of the insulation**|**Electric strength of the insulation**|**Electric strength of the insulation**|**Electric strength of the insulation**|**Electric strength of the insulation**|
|---|---|---|---|---|---|---|
||||**Housing**<br>**Output**<br>**PE**<br>**Input**<br>**Signaling**<br>**C**<br>**A**<br>**B**<br>**D**<br>**B**<br>**+**||||
||||**Output**<br>**PE**<br>**Input**<br>**Signaling**<br>**C**<br>**A**<br>**B**<br>**D**<br>**B**<br>**+**||||
|||**L1**<br>**L2**<br>**L3**<br>**(+)**<br>**(-)**|**Input**|**B**|**Signaling**||
||||||||
||||**PE**|**C**|**Output**<br>**+**||
||||||||
||||||||
|||||||**A**<br>**B**<br>**C**<br>**D**|
|Type test (IEC/EN 60950-1)||||||3.5 kV AC<br>4 kV AC<br>0.5 kV DC<br>0.5 kV DC|
|Production test||||||2.4 kV AC<br>2.4 kV AC<br>0.5 kV DC<br>0.5 kV DC|
|Field test (with gas-filled surge arrester)||||||0.8 kV AC<br>1.1 kV DC<br>0.8 kV AC<br>1.1 kV DC<br>0.5 kV DC<br>0.5 kV DC|
|Field test (gas-filled surge arrester de-contacted)<br>2 kV AC<br>2.83 kV DC<br>2 kV AC<br>2.83 kV DC<br>0.5 kV DC<br>0.5 kV DC|||||||



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**QUINT4-PS/3AC/24DC/40/IOL** 

## **POWER factor** 

|**Crest factor**|**400 V AC**|**480 V AC**|
|---|---|---|
||typ. 1,6|typ. 1.9|



## **Input current vs. output current** 

|**Input connection data**||
|---|---|
|Connection method|Screw connection|
|Conductor cross section, rigid|0.2 mm² ... 6 mm²|
|Conductor cross section, flexible|0.2 mm² ... 4 mm²|
|Conductor cross section flexible, with ferrule with plastic|0.25 mm² ... 4 mm²|
|sleeve||
|Conductor cross section flexible, with ferrule without|0.25 mm² ... 4 mm²|
|plastic sleeve||
|Conductor cross section AWG|24 ... 10|
|Stripping length|8 mm|
|Tightening torque|0.5 Nm ... 0.6 Nm|



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**QUINT4-PS/3AC/24DC/40/IOL** 

|**Output data**||
|---|---|
|Nominal output voltage (UN)|24 V DC|
|Setting range of the output voltage (USet) ( constant|24 V DC ... 29.5 V DC|
|capacity )||
|Nominal output current (IN)|40 A|
|Static Boost (IStat.Boost)|45 A|
|Dynamic Boost (IDyn.Boost)|60 A (5 s)|
|Selective Fuse Breaking (ISFB)|215 A (15 ms)|
|Magnetic circuit breaker tripping|A1...A40 / B2...B25 / C1...C13 / Z1...Z16|
|Control deviation Static load change 10 % ... 90 %|< 0.5 %|
|Control deviation Dynamic load change 10 % ... 90 %, (10|< 3 %|
|Hz)||
|Control deviation change in input voltage ±10 %|< 0.25 %|
|Short-circuit-proof|yes|
|No-load proof|yes|
|Residual ripple ( with nominal values )|< 50 mVPP|
|Connection in parallel|yes, for redundancy and increased capacity|
|Connection in series|yes|
|Feedback voltage resistance|≤ 35 V DC|
|Protection against overvoltage at the output (OVP)|≤ 32 V DC|
|Rise time typical|< 1 s (UOut= 10 % ... 90 %)|
|||
|**Output connection data**||
|Connection method|Screw connection|
|Conductor cross section, rigid|0.5 mm² ... 16 mm²|
|Conductor cross section, flexible|0.5 mm² ... 16 mm²|
|Conductor cross section flexible, with ferrule with plastic|0.5 mm² ... 16 mm²|
|sleeve||
|Conductor cross section flexible, with ferrule without|0.5 mm² ... 16 mm²|
|plastic sleeve||
|Conductor cross section AWG|20 ... 6|
|Stripping length|10 mm|
|Tightening torque|1.2 Nm ... 1.5 Nm|
|||
|**LED signaling**||
|POut> 100 %|LED lights up yellow, output power > 960 W|
|POut> 75 %|LED lights up green, output power > 720 W|
|POut> 50 %|LED lights up green, output power > 480 W|
|UOut> 0.9 x USet|LED lights up green|
|UOut< 0.9 x USet|LED flashes green|
|IO-Link master connected|LED lights up green|
|IO-Link communication active|LED flashes green|



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|**Signal contact (configurable)**||
|---|---|
|Relay contact (configurable) 13/14||
|Function|N/O contact|
|Default|closed (Uout> 0.9 USet)|
|Maximum contact load|24 V DC 1 A , 30 V AC/DC 0.5 A|
|||
|**IO-Link**||
|Specification|V1.1|
|Connection method|3-conductor port class A|
|Connection marking|3.3 (L+)|
||3.4 ()|
||3.5 (L-)|
|Reverse polarity protection|yes|
|Electrical isolation|yes|
|Transmission speed|230 kbps (COM3)|
|Cycle time|2 ms|
|Amount of process data|6 Byte (Input data)|
|Vendor ID|00B0hex/ 176dez|
|Device ID|262657dec/ 0x040201hex|
|||
|**System communication**||
|Connection method|2-conductor|
|Connection marking|3.6 ()|
||3.5 (L-/Sgnd)|
|Electrical isolation|yes|
|||
|**Signal connection data**||
|Connection method|Push-in connection|
|Conductor cross section, rigid|0.2 mm² ... 1 mm²|
|Conductor cross section, flexible|0.2 mm² ... 1.5 mm²|
|Conductor cross section flexible, with ferrule with plastic|0.2 mm² ... 1.5 mm²|
|sleeve||
|Conductor cross section flexible, with ferrule without|0.2 mm² ... 1.5 mm²|
|plastic sleeve||
|Conductor cross section AWG|24 ... 16|
|Stripping length|8 mm|
|||
|**Reliability**|**400 V AC**|
|MTBF (IEC 61709, SN 29500)|> 849000 h (25 °C)|
||> 517000 h (40 °C)|
||> 236000 h (60 °C)|



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**QUINT4-PS/3AC/24DC/40/IOL** 

|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|**Life expectancy (electrolytic capacitors)**<br>**Output current (IOut)**<br>**400 V AC**<br>**480 V AC**|
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
|20 A<br>> 394000 h ( 40 °C )<br>> 367000 h ( 40 °C )||||||||||||||
|40 A<br>> 139000 h ( 40 °C )<br>> 130000 h ( 40 °C )||||||||||||||
|40 A<br>> 394000 h ( 25 °C )<br>> 367000 h ( 25 °C )||||||||||||||
|The expected service life is based on the capacitors used. If the capacitor specification is observed, the<br>specified data will be ensured until the end of the stated service life. For runtimes beyond this time, error-free<br>operation may be reduced. The specified service life of more than 15 years is simply a comparative value.||||||||||||||
|||||||||||||||
|**Switching frequency**<br>**Min.**<br>**Max.**||||||||||||||
|PFC stage<br>25 kHz<br>500 kHz||||||||||||||
|Auxiliary converter stage<br>32 kHz<br>100 kHz||||||||||||||
|Main converter stage<br>55 kHz<br>300 kHz||||||||||||||
|||||||||||||||
|**General data**||||||||||||||
|Degree of protection<br>IP20||||||||||||||
|Protection class<br>I||||||||||||||
|Inflammability class in acc. with UL 94 (housing / terminal<br>blocks)<br>V0||||||||||||||
|Side element version||||||||||||Aluminum||
|Hood version||||||||||||Stainless steel X6Cr17||
|Dimensions W / H / D (state of delivery)||||||||||||120 mm / 130 mm / 125 mm||
|Weight||||||||||||2.6 kg||
|||||||||||||||
|**Power dissipation**||||||||||||**400 V AC**<br>**480 V AC**||
|Maximum power dissipation in no-load condition||||||||||||< 5 W<br>< 5 W||
|Power dissipation SLEEP MODE||||||||||||< 2 W<br>< 2 W||
|Power loss nominal load max.||||||||||||< 45 W<br>< 45 W||
|||||||||||||||
|**Efficiency**||||||||||||**400 V AC**<br>**480 V AC**||
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||�|||||||||||||
|||||�||||||||||
|||||||||||||||
||||||||||||||~~**�**~~|
||||||||~~**��**~~<br>|~~**���**~~|~~**���**~~|~~**�**~~<br>~~**�**~~<br>|~~**�**~~|~~**��**~~|~~**�**~~|
||||||�|�|**��**<br>**���**<br>**��**|**����**|**����**|**���**<br>**�**<br>**��**<br>**���**|**�**|**��**|**�**|
|||||||||||||||



PHOENIX CONTACT **10/66** 

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**QUINT4-PS/3AC/24DC/40/IOL** 

|**Ambient conditions**||
|---|---|
|Ambient temperature (operation)|-25 °C ... 70 °C (> 60 °C Derating: 2,5 %/K)|
|The ambient temperature (operation) refers to UL 508 surrounding air temperature.||
|Ambient temperature (start-up type tested)|-40 °C|
|Ambient temperature (storage/transport)|-40 °C ... 85 °C|
|Max. permissible relative humidity (operation)|≤ 95 % (at 25 °C, non-condensing)|
|Installation height|≤ 5000 m (> 2000 m, observe derating)|
|Vibration (operation)|5 Hz ... 100 Hz resonance search 0.7g, 90 min., resonance|
||frequency 0.7g, 90 min. (in accordance with DNV GL Class A)|
||5 Hz ... 100 Hz resonance search 2.3g, 90 min., resonance|
||frequency 2.3g, 90 min. (according to DNV GL Class C)|
||mounted with UWA 130 - 2901664|
|In order to achieve the specified vibration resistance, the power supply must be secured in place with two end||
|brackets of type E/AL-NS 35 (1201662).||
|Shock|11 ms, 15 g, in each space direction (according to IEC 60068-|
||2-27)|
|Degree of pollution|2|
|Climatic class|3K3 (in acc. with EN 60721)|
|Overvoltage category||
|EN 61010-1|II (≤ 5000 m)|
|EN 62477-1|III (≤ 2000 m)|
|||
|**Standards**||
|Safety transformers for power supply units|EN 61558-2-16|
|Electrical safety (of control and regulation devices)|IEC 61010-1|
|Protective extra-low voltage|IEC 61010-1 (SELV)|
||IEC 61010-2-201 (PELV)|
|Safe isolation|IEC 61558-2-16|
||IEC 61010-2-201|
|Limitation of mains harmonic currents|EN 61000-3-2|
|Network version/undervoltage|SEMI F47-0706, EN 61000-4-11|
|Rail applications|EN 50121-3-2|
||EN 50121-5|
||IEC 62236-3-2|
||IEC 62236-5|
|EMC requirements, power plant|EN 61000-6-5|
|HART FSK Physical Layer Test Specification Compliance|Output voltage UOutcompliant|



PHOENIX CONTACT **11/66** 

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**QUINT4-PS/3AC/24DC/40/IOL** 

|**Approvals**||
|---|---|
|UL|UL Listed UL 61010-1|
||UL Listed UL 61010-2-201|
||UL 121201 & CSA C22.2 No. 213-17 Class I, Division 2,|
||Groups A, B, C, D T4 (Hazardous Location)|
|CSA|CAN/CSA-C22.2 No. 61010-1-12|
||CAN/CSA-C22.2 No. 61010-2-201|
|SIQ|CB-Scheme (IEC 61010-1, IEC 61010-2-201)|



PHOENIX CONTACT **12/66** 

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**QUINT4-PS/3AC/24DC/40/IOL** 

|**Electromagnetic compatibility**|||
|---|---|---|
|**Conformance with EMC Directive 2014/30/EU**|||
|**Noise emission according to EN 61000-6-3 (residential and commercial) and EN**||**61000-6-4 (industrial)**|
|**CE basic standard**|**Minimum normative**|**Higher requirements in**|
||**requirements**|**practice (covered)**|
|Conducted noise emission EN 55016|EN 61000-6-4 (Class A)|EN 61000-6-3 (Class B)|
|Noise emission EN 55016|EN 61000-6-4 (Class A)|EN 61000-6-3 (Class B)|
|Harmonic currents EN 61000-3-2|EN 61000-3-2 (Class A)|EN 61000-3-2 (Class A)|
|Flicker EN 61000-3-3|not required|EN 61000-3-3|



|**Immunity according to EN 61000-6-1**|**(residential), EN**|**61000-6-2 (industrial), and EN 61000-6-5 (power station**|**61000-6-2 (industrial), and EN 61000-6-5 (power station**|
|---|---|---|---|
|**equipment zone), IEC/EN 61850-3 (energy supply)**||||
|**CE basic standard**||**Minimum normative**|**Higher requirements in**|
|||**requirements of**|**practice (covered)**|
|||**EN 61000-6-2 (CE)**||
|||**(immunity for industrial**||
|||**environments)**||
|Electrostatic discharge EN 61000-4-2||||
|Housing contact discharge||4 kV (Test Level 2)|8 kV (Test Level 4)|
|Housing air discharge||8 kV (Test Level 3)|15 kV (Test Level 4)|
||Comments|Criterion B|Criterion B|
|Electromagnetic HF field EN 61000-4-3||||
||Frequency range|80 MHz ... 1 GHz|80 MHz ... 1 GHz|
|Test field strength||10 V/m (Test Level 3)|20 V/m (Test Level 3)|
||Frequency range|1 GHz ... 6 GHz|1 GHz ... 6 GHz|
|Test field strength||3 V/m (Test Level 2)|10 V/m (Test Level 3)|
||Comments|Criterion A|Criterion A|
|Fast transients (burst) EN 61000-4-4||||
||Input|2 kV (Test Level 3 -|4 kV (Test Level 4 -|
|||asymmetrical)|asymmetrical)|
||Output|2 kV (Test Level 3 -|2 kV (Test Level 4 -|
|||asymmetrical)|asymmetrical)|
||Signal|1 kV (Test Level 3 -|2 kV (Test Level 4 -|
|||asymmetrical)|asymmetrical)|
||Comments|Criterion B|Criterion B|



PHOENIX CONTACT **13/66** 

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|**Immunity according to EN 61000-6-1**|**(residential), EN**|**61000-6-2 (industrial), and**|**EN 61000-6-5 (power station**|
|---|---|---|---|
|**equipment zone), IEC/EN 61850-3 (energy supply)**||||
|**CE basic standard**||**Minimum normative**|**Higher requirements in**|
|||**requirements of**|**practice (covered)**|
|||**EN 61000-6-2 (CE)**||
|||**(immunity for industrial**||
|||**environments)**||
|Surge voltage load (surge) EN 61000-4-5||||
||Input|1 kV (Test Level  3 -|2 kV (Test Level  3 -|
|||symmetrical)|symmetrical)|
|||2 kV (Test Level 3 -|6 kV (Test Level 4 -|
|||asymmetrical)|asymmetrical)|
||Output|0.5 kV (Test Level 2 -|1 kV (Test Level  3 -|
|||symmetrical)|symmetrical)|
|||0.5 kV (Test Level 1 -|2 kV (Test Level 3 -|
|||asymmetrical)|asymmetrical)|
||Signal|0.5 kV (Test Level 1 -|1 kV (Test Level 2 -|
|||asymmetrical)|asymmetrical)|
||Comments|Criterion B|Criterion B|
|Conducted interference EN 61000-4-6||||
|Input/Output/Signal||asymmetrical|asymmetrical|
||Frequency range|0.15 MHz ... 80 MHz|0.15 MHz ... 80 MHz|
||Voltage|10 V (Test Level 3)|10 V (Test Level 3)|
||Comments|Criterion A|Criterion A|
|Power frequency magnetic field EN 61000-4-8||||
|||50 Hz , 60 Hz|16.7 Hz , 50 Hz , 60 Hz|
|||( 30 A/m  )|( 100 A/m 60 s )|
|||not required|50 Hz , 60 Hz ( 1 kA/m , 3 s )|
|||not required|0 Hz ( 300 A/m , DC, 60 s )|
||Comments|Criterion A|Criterion A|
|Voltage dips EN 61000-4-11||||
|Input voltage ( 400 V AC , 50 Hz )||||
||Voltage dip|70 % , 25 periods|70 % , 0.5 / 1 / 25 periods|
|||( Test Level 2 )|( Test Level 2 )|
||Comments|Criterion C|Criterion A: 0.5 / 1 period|
||||Criterion B: 25 periods|
||Voltage dip|40 % , 10 periods|40 % , 5 / 10  / 50 periods|
|||( Test Level 2 )|( Test Level 2 )|
||Comments|Criterion C|Criterion B|
||Voltage dip|0 % , 1 period|0 % , 0,5 / 1 / 5 / 50 / 250|
|||( Test Level 2 )|periods ( Test Level 2 )|
||Comments|Criterion B|Criterion A: 0.5 / 1 period|
||||Criterion B: 5 / 50 / 250 periods|



PHOENIX CONTACT **14/66** 

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|**Additional basic standard EN 61000-6-5 (immunity in power station), IEC/EN 61850-3**|**Additional basic standard EN 61000-6-5 (immunity in power station), IEC/EN 61850-3**|**Additional basic standard EN 61000-6-5 (immunity in power station), IEC/EN 61850-3**|**Additional basic standard EN 61000-6-5 (immunity in power station), IEC/EN 61850-3**|**Additional basic standard EN 61000-6-5 (immunity in power station), IEC/EN 61850-3**|**Additional basic standard EN 61000-6-5 (immunity in power station), IEC/EN 61850-3**|**Additional basic standard EN 61000-6-5 (immunity in power station), IEC/EN 61850-3**|**Additional basic standard EN 61000-6-5 (immunity in power station), IEC/EN 61850-3**|**(energy supply)**|
|---|---|---|---|---|---|---|---|---|
|**Basic standard**||||||**Minimum normative**||**Higher requirements in**|
|||||||**requirements of**||**practice (covered)**|
|||||||**EN 61000-6-5**|||
|Pulse-shape magnetic field EN 61000-4-9|||||||||
|||||||not required||1000 A/m|
|||||Comments||none||Criterion A|
|Damped oscillating magnetic field EN||61000-4-10|||||||
|||||||not required||100 kHz|
|||||||||100 A/m|
|||||||not required||1 MHz|
|||||||||100 A/m|
|||||Comments||none||Criterion A|
|Attenuated sinusoidal oscillations (ring|||wave) EN 61000-4-12||||||
||||||Input|not required||2 kV (Test Level 4 -|
|||||||||symmetrical)|
|||||||not required||4 kV (Test Level 4 -|
|||||||||asymmetrical)|
|||||Comments||none||Criterion A|
|Asymmetrical conducted disturbance variables EN|||||61000-4-16||||
||Input, Output, Signals|||||15 Hz ... 150 Hz , 10 V on 1 V|15 Hz ... 150 Hz , 10 V on 1 V||
|||||||150 Hz ... 1.5 kHz , 1 V||150 Hz ... 1.5 kHz , 1 V|
|||||||1.5 kHz ... 15 kHz , 1 V on 10 V|1.5 kHz ... 15 kHz , 1 V on 10 V||
|||||||15 kHz ... 150 kHz , 10 V||15 kHz ... 150 kHz , 10 V|
|||||||( Test Level 3 )||( Test Level 3 )|
|||||||50 Hz , 60 Hz , 10 V||50 Hz , 60 Hz , 10 V|
|||||||(Permanent)||(Permanent)|
|||||||50 Hz , 60 Hz , 100 V (1 s)||50 Hz , 60 Hz , 100 V (1 s)|
|||||||( Test Level 3 )||( Test Level 3 )|
|||||Comments||Criterion A||Criterion A|
||||||||||
|**Key**|||||||||
|Criterion A|||Normal operating behavior within the specified limits.||||||
|Criterion B|||Temporary||impairment to operational behavior that is corrected by the device itself.||||
|Criterion C|||Temporary||adverse effects on the operating behavior, which the device corrects||||
||||automatically or which can be restored by actuating the operating elements.||||||



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## **5 Safety and installation notes** 

## **5.1 Symbols used** 

## **5.2 Safety and warning notes** 

## **WARNING: Danger to life by electric shock!** 

Instructions and possible hazards are indicated by corresponding symbols in this document. 

This is the safety alert symbol. It is used to alert you to potential personal injury hazards. Obey all safety measures that follow this symbol to avoid possible personal injuries. 

There are different categories of personal injury that are indicated by a signal word. 

## **WARNING** 

This indicates a hazardous situation which, if not avoided, could result in death or serious injury. 

- Only skilled persons may install, start up, and operate the device. 

- The power supply must be switched off from outside (e.g. via the line protection on the primary side). 

- Never carry out work when voltage is present. 

- Establish connection correctly and ensure protection against electric shock. 

- Cover termination area after installation in order to avoid accidental contact with live parts (e. g., installation in control cabinet). 

- Protection may be impaired if the equipment is used in a manner not specified by the manufacturer. 

## **CAUTION** 

## **CAUTION: Hot surface** 

- This indicates a hazardous situation which, if not avoided, could result in minor or moderate injury. 

The following symbols are used to indicate potential damage, malfunctions, or more detailed sources of information. 

## **NOTE** 

This symbol together with the signal word NOTE and the accompanying text alert the reader to a situation which may cause damage or malfunction to the device, hardware/software, or surrounding property. 

This symbol and the accompanying text provide the reader with additional information or refer to detailed sources of information. 

Depending on the ambient temperature and load on the power supply, the housing can become hot. 

## **NOTE** 

- Observe the national safety and accident prevention regulations. 

- Assembly and electrical installation must correspond to the state of the art. 

- The power supply is a built-in device and is designed for mounting in a control cabinet. 

- The IP20 degree of protection of the device is intended for use in a clean and dry environment. 

- Observe mechanical and thermal limits. 

- Ensure minimum clearances to external heat sources. 

- Mount the power supply unit in the standard installation position. Position of the L1/L2/L3/  connection terminal blocks at bottom. 

- Connect the housing to ground via protective conductor device terminal block  . 

- Ensure that the primary-side wiring and secondary-side wiring are the correct size and have sufficient fuse protection. 

- Use copper cables for operating temperatures of  75 °C (ambient temperature  55 °C)  90 °C (ambient temperature  75 °C). 

- For the connection parameters for wiring the power supply, such as the required stripping length with and without ferrule, refer to the technical data section. 

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- The power supply is approved for the connection to 3- phase TN, TT and IT power grids (star networks) with a maximum phase-to-phase voltage of 500 V AC. 

- Protect the device against foreign bodies penetrating it, e.g., paper clips or metal parts. 

- The power supply is maintenance-free. Repairs may only be carried out by the manufacturer. The warranty no longer applies if the housing is opened. 

- The power supply may only be used for its intended use. 

- – Relay contact 13/14 can be used to max. 30 V AC/ 24 V DC. 

   - The continuous total output power may not exceed PN at 60 °C ambient temperature and PStat. Boost at 40°C ambient temperature. Observe all the maximum output powers for all operating conditions. 

## **NOTE: Damage to the Push-in connection terminal blocks is possible** 

Do not plug test pins into the Push-in connection terminal blocks. The maximum pluggable depth of the Push-in connection terminal blocks is limited. In addition, when the test pin is plugged in, the unlocking button (pusher) is covered to such an extent that unlocking is not possible or only possible to an insufficient extent. If you do not push the unlocking button (pusher) down completely when you are pulling the test pin out, then the Push-in connection terminal block will become damaged. 

**==> picture [69 x 66] intentionally omitted <==**

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**QUINT4-PS/3AC/24DC/40/IOL** 

## **6 High-voltage test (HIPOT)** 

This protection class I power supply is subject to the Low Voltage Directive and is factory tested. During the HIPOT test (high-voltage test), the insulation between the input circuit and output circuit is tested for the prescribed electric strength values, for example. The test voltage in the highvoltage range is applied at the input and output terminal blocks of the power supply. The operating voltage used in normal operation is a lot lower than the test voltage used. 

## **6.3 High-voltage dielectric test performed by the customer** 

Apart from routine and type tests to guarantee electrical safety, the end user does not have to perform another highvoltage test on the power supply as an individual component. According to EN 60204-1 (Safety of machinery - Electrical equipment of machines) the power supply can be disconnected during the high-voltage test and only installed once the high-voltage test has been completed. 

High-voltage tests up to 0.8 kV AC / 1.1 kV DC can be performed as described. 

For high-voltage tests > 0.8 kV AC / 1.1 kV DC, the gas-filled surge arrester must be disconnected. 

The test voltage should rise and fall in ramp form. The relevant rise and fall time of the ramp should be at least two seconds. 

## **6.1 High-voltage dielectric test (dielectric strength test)** 

In order to protect the user, power supplies (as electric components with a direct connection to potentially hazardous voltages) are subject to more stringent safety requirements. For this reason, permanent safe electrical isolation between the hazardous input voltage and the touch-proof output voltage as safety extra-low voltage (SELV) must always be ensured. 

In order to ensure permanent safe isolation of the AC input circuit and DC output circuit, high-voltage testing is performed as part of the safety approval process (type test) and manufacturing (routine test). 

## **6.2 High-voltage dielectric test during the manufacturing process** 

During the manufacturing process for the power supply, a high-voltage test is performed as part of the dielectric test in accordance with the specifications of IEC/UL/EN 61010-1. The high-voltage test is performed with a test voltage of at least 1.5 kV AC / 2.2 kV DC or higher. Routine manufacturing tests are inspected regularly by a certification authority. 

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**QUINT4-PS/3AC/24DC/40/IOL** 

## **6.3.1 Performing high-voltage testing** 

If high-voltage testing of the control cabinet or the power supply as a stand-alone component is planned during final inspection and testing, the following features must be observed. 

- The power supply wiring must be implemented as shown in the wiring diagram. 

- The maximum permissible test voltages must not be exceeded. 

Avoid unnecessary loading or damage to the power supply due to excessive test voltages. 

## **6.3.2 Disconnecting the gas discharge tube** 

The built-in gas discharge tube inside the device ensures that the power supply is effectively protected against asymmetrical disturbance variables (e.g., EN 61000-4-5). 

Each surge voltage test represents a very high load for the power supply. Therefore avoid unnecessary loading or damage to the power supply due to excessive test voltages. If necessary, the gas discharge tube inside the device can be disconnected in order to use higher test voltages. Following successful completion of testing, please reconnect the gas-discharge tube. 

Figure 2 Disconnect gas discharge tube 

- For the relevant applicable test voltages and insulation distances, refer to the corresponding table (see technical data: electric strength of the insulation section). 

Figure 1 Potential-related wiring for the high-voltage test 

**==> picture [193 x 185] intentionally omitted <==**

**----- Start of picture text -----**<br>
1<br>2.1 2.2 2.3 2.4 2.5<br>+ +<br>Output  DC<br>UOut Signal<br>13 3.1<br>14 3.2<br>L+ 3.3<br>L- 3.43.5 2<br>3.6<br>> 100%   Boost<br>> 75%> 50%  P Out<br>DC OK IO -Link HV 3<br>�/=<br>L1/-Input AC L2 L3/+<br>1.1 1.2 1.3 1.4<br>4<br>QUINT POWER<br>-Link<br>IO<br>**----- End of picture text -----**<br>


**==> picture [199 x 136] intentionally omitted <==**

**----- Start of picture text -----**<br>
A<br>B<br>3.3<br>3.4<br>3.5<br>3.6<br>> 100% BoostPout<br>> 75%<br>> 50%<br>DC OK<br>14<br>L+<br>L-<br>M3x8 IO -Link<br>QUINT POW<br>-Link<br>IO<br>**----- End of picture text -----**<br>


To disconnect the gas discharge tube, proceed as follows: 

1. Remove power from the unit. 

2. Unscrew the Phillips head screw completely and keep the gas discharge tube screw in a safe place. The gasdischarge tube is now disconnected and is no longer functional. 

3. Perform the surge voltage test on the power supply. 

4. Following successful high-voltage testing, screw the gas discharge tube screw fully back into the power supply. 

**Key** 

|**No.**|**Designation**|**Color coding**|**Potential lev-**<br>**els**|
|---|---|---|---|
|1|DC output circuit|Blue|Potential 1|
|2|Signal contacts|Blue|Potential 1|
|3|High-voltage<br>tester|--|--|
|4|AC input circuit|Red|Potential 2|



## **DANGER: Risk of electric shock or damage to the power supply due to using the wrong gas discharge tube screw** 

To connect the gas-filled surge arrester, only use the gas-filled surge arrester screw that was originally installed in the power supply. 

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**QUINT4-PS/3AC/24DC/40/IOL** 

## **7 Structure of the power supply** 

The fanless convection-cooled power supply can be snapped onto all DIN rails according to EN 60715. 

## **7.1 Function elements** 

Figure 3 Operating and indication elements 

**==> picture [234 x 430] intentionally omitted <==**

**----- Start of picture text -----**<br>
1<br>2 2<br>2.1+ 2.2+ 2.3 2.4 2.5 3<br>10 Output DC 24V 40A<br>29,5VUOut Signal<br>13 3.1<br>14 3.2<br>L+ 3.3<br>3.4<br>L- 3.5<br>3.6<br>24V<br>> 100%   Boost<br>> 75%> 50%  P Out 4<br>DC OK<br>IO -Link 5<br>9<br>Input AC 400-500V<br>8 DC +/- 260-300VL1/- L2 L3/+<br>1.1 1.2 1.3 1.4 6<br>2 2<br>7<br>Key<br>No. Designation<br>1 DC output voltage connection terminal blocks<br>2 Accommodation for cable binders<br>3 Signaling connection terminal blocks<br>4 Status and diagnostics indicators<br>5 Status indicator IO-Link communication; LED<br>(green)<br>6 QR code web link<br>7 AC input voltage connection terminal blocks<br>8 Gas discharge tube for surge protection (left side of<br>housing)<br>9 Universal DIN rail adapter (rear of housing)<br>10 Output voltage button   (-) /   (+)<br>Ord.No.1151047<br>QUINT POWER<br>-Link<br>IO<br>**----- End of picture text -----**<br>


## **7.2 Device dimensions** 

Figure 4 Device dimensions (dimensions in mm) 

**==> picture [222 x 182] intentionally omitted <==**

**----- Start of picture text -----**<br>
120<br>2.1 2.2 2.3 2.4 2.5<br>+ +<br>Output DC<br>UOut Signal<br>13 3.1<br>14 3.2<br>L+ 3.3<br>3.4<br>L- 3.5<br>3.6<br>> 100%   Boost<br>> 75%> 50%  P Out<br>DC OK<br>IO -Link<br>Input AC<br>L1/- L2 L3/+<br>1.1 1.2 1.3 1.4<br>65<br>QUINT POWER<br>-Link<br>IO 130<br>**----- End of picture text -----**<br>


Figure 5 Device dimensions (dimensions in mm) 

**==> picture [175 x 168] intentionally omitted <==**

**----- Start of picture text -----**<br>
131<br>125<br>122<br>130<br>80<br>45<br>**----- End of picture text -----**<br>


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**QUINT4-PS/3AC/24DC/40/IOL** 

## **7.3 Keep-out areas** 

|**Nominal output**<br>**capacity**|**Spacing [mm]**|**Spacing [mm]**|**Spacing [mm]**|
|---|---|---|---|
||**a**|**b**|**c**|
|< 50 %|0|40|20|
|≥ 50 %|5|50|50|



Figure 6 Device dimensions and minimum keep-out areas (in mm) 

**==> picture [160 x 198] intentionally omitted <==**

**----- Start of picture text -----**<br>
a  120  a<br>2.1+ 2.2+ Output  DC 2.3 2.4 2.5<br>UOut Signal<br>13 3.1<br>14 3.2<br>L+ 3.3<br>3.4<br>L- 3.5<br>3.6<br>> 75%> 50%> 100%   Boost P Out<br>DC OK<br>IO -Link<br>1.1 L1/-1.2Input AC 1.3L2 L3/+1.4<br>b<br>QUINT POWER<br>-Link<br>130  IO<br>c<br>**----- End of picture text -----**<br>


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**QUINT4-PS/3AC/24DC/40/IOL** 

## **7.4 Block diagram** 

Figure 7 Block diagram 

**==> picture [414 x 203] intentionally omitted <==**

**----- Start of picture text -----**<br>
1.1 2.1 +<br>2.2<br>L1/-L2L3/+ 1.21.31.4 � activePFC 2.32.4 +--<br>2.5 -<br>OVP<br>3.1 13<br>3.2 14<br>� C 3.3 L+<br>�C COM 3.4<br>3.5 L-<br>3.6<br>**----- End of picture text -----**<br>


## **Key** 

**==> picture [484 x 298] intentionally omitted <==**

**----- Start of picture text -----**<br>
||||||||
|---|---|---|---|---|---|---|
|Symbol|Designation|Symbol|Designation|
|Surge protection (gas discharge tube)|Auxiliary converter (electrically isolating)|
|Surge protection (varistor) with filter|Optocoupler (electrically isolating)|
|Bridge rectifier|Additional regulatory protection against|
|OVP|surge voltage|
|Inrush current limitation|Microcontroller|
|�|C|
|�|
|active|Power factor correction (PFC)|Output voltage button||(-) /||(+)|
|PFC|
|Switching transistor and main transmitter|Relay contact|
|(electrically isolating)|
|Secondary rectification and smoothing|Electrical isolation|
|Filter|μC|Communication controller|
|COM|
|Signal/display LEDs (POut, DC OK)|

**----- End of picture text -----**<br>


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## **8 Mounting/removing the power supply** 

## **8.1 Mounting the power supply unit** 

Proceed as follows to mount the power supply: 

1. In the normal mounting position the power supply is mounted on the DIN rail from above. Make sure that the universal DIN rail adapter is in the correct position behind the DIN rail (A). 

2. Then press the power supply down until the universal DIN rail adapter audibly latches into place (B). 

3. Check that the power supply is securely attached to the DIN rail. 

Figure 8 Snapping the power supply onto the DIN rail 

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A<br>Click<br>B<br>**----- End of picture text -----**<br>


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4. Then separate the power supply from the DIN rail (D). Figure 9 Removing the power supply from the DIN rail 

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D<br>C<br>A B<br>**----- End of picture text -----**<br>


## **8.3 Retrofitting the universal DIN rail adapter** 

For installation in horizontal terminal boxes it is possible to mount the power supply at a 90° angle to the DIN rail. 

No additional mounting material is required. 

- Use the Torx screws provided to attach the universal DIN rail adapter to the side of the power supply. 

## **8.3.1 Disassembling the universal DIN rail adapter** 

## **8.2 Removing the power supply unit** 

Proceed as follows to remove the power supply: 

1. Take a suitable screwdriver and insert this into the lock hole on the universal DIN rail adapter (A). 

2. Release the lock by lifting the screwdriver (B). 

3. Carefully swivel the power supply forward (C) so that the lock slides back into the starting position. 

Proceed as follows to disassemble the universal DIN rail adapter that comes pre-mounted: 

1. Remove the screws for the universal DIN rail adapter using a suitable screwdriver (Torx 10). 

2. Separate the universal DIN rail adapter from the rear of the power supply. 

Figure 10 Disassembling the universal DIN rail adapter 

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## **8.3.2 Mounting the universal DIN rail adapter** 

To mount the universal DIN rail adapter on the left side of the device, proceed as follows: 

1. Position the universal DIN rail adapter on the left side of the housing so that the mounting holes are congruent with the hole pattern for the mounting holes. 

2. Insert the Torx screws that were removed earlier into the appropriate hole pattern on the universal DIN rail adapter so that the necessary drill holes on the power supply can be accessed. 

3. Screw the universal DIN rail adapter onto the power supply. 

   - The maximum tightening torque of the Torx screw (Torx® T10) is 0.7 Nm. 

Figure 11 Mounting the universal DIN rail adapter 

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M3x8 M3x8<br>**----- End of picture text -----**<br>


## **8.4 Retrofitting the universal wall adapter** 

The UWA 182/52 universal wall adapter (Item No. 2938235) or UWA 130 universal wall adapter (Item No. 2901664) is used to attach the power supply directly to the mounting surface. 

The use of universal wall adapters is recommended under extreme ambient conditions, e.g., strong vibrations. Thanks to the tight screw connection between the power supply and the universal wall adapter or the actual mounting surface, an extremely high level of mechanical stability is ensured. 

## **8.4.1 Mounting the UWA 182/52 universal wall adapter** 

Proceed as follows to disassemble the universal DIN rail adapter that comes pre-mounted: 

1. Remove the screws for the universal DIN rail adapter using a suitable screwdriver (Torx 10). 

2. Separate the universal DIN rail adapter from the rear of the power supply. 

3. Position the universal wall adapter in such a way that the keyholes or oval tapers face up. The mounting surface for the power supply is the raised section of the universal wall adapter. 

4. Place the power supply on the universal wall adapter in the normal mounting position (input voltage connection terminal blocks below). 

5. Insert the Torx screws into the appropriate hole pattern on the universal wall adapter so that the necessary mounting holes on the power supply can be accessed. 

6. Screw the universal wall adapter onto the power supply. 

Figure 12 Mounting the UWA 182/52 universal wall adapter 

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M3x8 M3x8<br>**----- End of picture text -----**<br>


The maximum tightening torque of the Torx screw (Torx® T10) is 0.7 Nm. 

Make sure you use suitable mounting material when attaching to the mounting surface. 

The power supply is attached to the UWA 182 or UWA 130 universal wall adapter by means of the Torx screws of the universal DIN rail adapter. 

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## **8.4.2 Mounting the UWA 130 2-piece universal wall adapter** 

Proceed as follows to disassemble the universal DIN rail adapter that comes pre-mounted: 

1. Remove the screws for the universal DIN rail adapter using a suitable screwdriver (Torx 10). 

2. Separate the universal DIN rail adapter from the rear of the power supply. 

3. Position the universal wall adapter. The mounting surface for the power supply is the raised section of the universal wall adapter. 

4. Place the power supply on the universal wall adapter in the normal mounting position (input voltage connection terminal blocks below). 

5. Insert the Torx screws into the appropriate hole pattern on the universal wall adapter so that the necessary mounting holes in the side flanges of the power supply can be accessed. 

6. Screw the two-piece universal wall adapter onto the power supply. 

Figure 13 Mounting the UWA 130 universal wall adapter 

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M3x8 M3x8<br>**----- End of picture text -----**<br>


## **8.5 Fix connection wiring to the power supply** 

Two receptacles for the bundled attachment of the connection wiring are integrated in the left and right housing panel. Use cable binders to secure the connection wiring (optional WT-HF 3,6X140 - Item No. 3240744). 

Proceed as follows to secure the connection wiring: 

- Wire the power supply with sufficient connection reserve (input terminal blocks, output terminal blocks, signal terminal blocks) 

- Bundle and set up the connection wiring so that the cooling grilles on the top and bottom of the housing are covered as little as possible. 

- Thread the cable binders into the necessary receptacles for the cable binders. 

Figure 14 Lay and align connection wiring 

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UOut<br>> 50%> 75%> 100% Boost<br>13<br>14<br>L+<br>L-<br>Signal<br>DC OK Pout<br>+ + - - -<br>2.1 2.2Output DC 2.3 2.4 2.5<br>3.1<br>3.2<br>3.33.4<br>3.5<br>3.6<br>QUINT POWER<br>IO -Link<br>**----- End of picture text -----**<br>


- Secure the connection wiring with the cable binders. Make sure that the connection wiring is attached safely and securely without damaging the connection wiring. 

Figure 15 Secure connection wiring with cable binder 

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UOut<br>> 50%> 75%> 100% Boost<br>13<br>14<br>L+<br>L-<br>Signal<br>DC OK Pout<br>+ + - - -<br>2.1 2.2Output DC 2.3 2.4 2.5<br>3.1<br>3.2<br>3.33.4<br>3.5<br>3.6<br>QUINT POWER<br>IO -Link<br>**----- End of picture text -----**<br>


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- Shorten the excess length of the cable ties. 

- Then check again that the connection wiring is properly secured. 

Figure 16 Shorten protruding ends of the cable binder 

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UOut<br>> 50%> 75%> 100% Boost<br>13<br>14<br>L+<br>L-<br>Signal<br>DC OK Pout<br>+ + - - -<br>2.1 2.2Output DC 2.3 2.4 2.5<br>3.1<br>3.2<br>3.33.4<br>3.5<br>3.6<br>QUINT POWER<br>IO -Link<br>**----- End of picture text -----**<br>


**NOTE:** Mechanical damage to the connection wiring caused by friction 

In extreme ambient conditions, e.g., strong vibrations, protect the connection wiring against mechanical damage using additional insulation material. The additional insulation material for protecting the connection wiring is limited to the area where the cable binders are attached. 

## **9 Device connection terminal blocks** 

The AC input and DC output terminal blocks on the front of the power supply feature screw connection technology. The signal level is wired without tools by means of Push-in connection technology. 

For the necessary connection parameters for the connection terminal blocks, refer to the technical data section. 

## **9.1 Input** 

The power supply is operated in a three-phase AC power grid (star network). The power supply is connected on the primary side via the INPUT L1/L2/L3/  connection terminal blocks. 

The power supply is approved for connection to TN, TT, and IT power grids (star networks) with a maximum phase-to-phase voltage of 500 V AC. 

Figure 17 Network configurations in star network 

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TN-S TN-C<br>L1 L1<br>L2 L2<br>L3 L3<br>N PEN<br>PE<br>L1 L2 L3 L1 L2 L3<br>+ - + -<br>**----- End of picture text -----**<br>


## **iT** 

## **TT** 

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L1 L1<br>L2 L2<br>L3 L3<br>N<br>L1 L2 L3 L1 L2 L3<br>+ - + -<br>**----- End of picture text -----**<br>


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## **9.2 Protection of the primary side** 

Installation of the device must correspond to EN 61010 regulations. It must be possible to switch off the device using a suitable disconnecting device outside the power supply. The line protection on the primary side is suitable for this (see technical data section). 

## **DANGER: Hazardous voltage** 

An all-pos. fuse must be present for operation on three-phase and DC systems. 

## **9.3 Output** 

By default, the power supply is pre-set to a nominal output voltage of 24 V DC. 

The output voltage is adjusted via the two arrow keys  (-) and  (+) on the front of the power supply. 

When you press the arrow key once briefly, the output voltage is reduced  (-) or increased  (+) by 3 mV. When you press the arrow key for longer, the voltage is adjusted in 100 mV increments. 

## **9.4 Protection of the secondary side** 

## **Protection for AC supply** 

Figure 18 Pin assignment for AC supply voltage 

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Input AC 400...500 V<br>L1<br>L1<br>L2<br>L3<br>N<br>L2<br>PE<br>L3<br>N<br>L1/- L2 L3/+<br>PE<br>**----- End of picture text -----**<br>


The power supply is electronically short-circuit-proof and no-load-proof. In the event of an error, the output voltage is limited 

If sufficiently long connecting cables are used, fuse protection does not have to be provided for each individual load. 

If each load is protected separately with its own protective device, the selective shutdown in the event of a fault enables the system to remain operational. 

## **Protection for DC supply** 

If the power supply is operated with a DC voltage, the star point of the DC supply system used for supply must be grounded. 

Figure 19 Pin assignment for DC supply voltage 

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�<br>�<br>��<br>������������� ���<br>������������<br>�������������<br>�<br>������������<br>��<br>**----- End of picture text -----**<br>


DC applications require upstream installation of a fuse that is permitted for the operating voltage. 

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## **10 Output characteristic curves** 

This section describes the various output characteristic curves together with their areas of application for customization to your specific application. The U/I Advanced characteristic curve is set by default. 

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M + -<br>Selective  Keeping<br>Application Normal load System expansion Loads with high inrush current Energy storage charging tripping of fuses when faults occurtemperatures low  ���������������non-fused<br>Your benefits Reliable power supply even in the event of sustained overload������������� over-dimensioned power supply unit No  Fast charging continue working Parallel loads  Low thermal stress when faults occur configuration without fuseEnables<br>required<br>Characteristics<br>U/I Advanced -<br>Smart HICCUP - -<br>FUSE MODE - - -<br>Secure shut-off - -<br>Icon Designation<br>Suitable for the application<br>- Not suitable for the application<br>**----- End of picture text -----**<br>


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## **10.1 U/I Advanced output characteristic curve** 

The preset U/I Advanced output characteristic curve is optimized for the following applications: 

- For selective tripping of standard circuit breakers (SFB technology). The power supply supplies up to 6 times the nominal current for 15 ms. Loads connected in parallel continue working. 

- When supplying loads with high switch-on currents, such as motors. The dynamic boost of the power supply supplies up to 200% of the nominal power for 5 s. This ensures that sufficient reserve energy is available; overdimensioning of the power supply is not necessary. 

- For system extension. With the static boost, up to 125% of the nominal output power is available for a sustained period (up to 40°C). 

- For fast energy storage charging (e.g., of batteries) to supply a wide range of loads. The power supply operates in the nominal operating range. Energy supply to the load is ensured. 

## **10.2 Smart HICCUP output characteristic curve** 

The SMART HICCUP output characteristic curve keeps the thermal load of the connecting cables at a low level in the event of a sustained overload. If loads are not protected or are protected in a way that is not permitted, the loads are supplied for 2 s. The DC output of the power supply is then switched off for 8 s. This procedure is repeated until the cause of the overload has been remedied. 

The Smart HICCUP output characteristic curve is optimized for the following applications: 

- If only a low short-circuit current is permitted. 

- If following an overload or short circuit the output voltage should be made available again automatically. 

- Figure 21 Smart HICCUP output characteristic curve 

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ee OD<br>**----- End of picture text -----**<br>


Figure 20 U/I Advanced output characteristic curve > | I 

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## **10.3 FUSE MODE output characteristic curve** 

In the event of an overload (e.g., short circuit), the power supply switches off the DC output permanently. The value of the switch-off threshold and the time period for which it may be exceeded can be freely selected. The power supply can be restarted via IO-Link, system communication, or by switching the supply voltage on the primary side off and on. 

Selecting the FUSE MODE output characteristic curve sets the following default values. 

- tFuse = 100 ms 

- IFuse = IN 

- Figure 22 FUSE MODE output characteristic curve 

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I Fuse<br>0<br>t Fuse<br>t [s]<br> [A]<br>IOut<br>**----- End of picture text -----**<br>


## **10.4 Secure shut-off output characteristic curve** 

In the event of a sustained overload, the power supply switches off the DC output based on the voltage to ensure safe operation. 

SFB Technology and the dynamic boost are available to trigger the protection on the secondary side. If the output voltage still dips due to a sustained overload, the power supply switches off the DC output permanently when the voltage drops below a parameterizable threshold. The value of the switch-off threshold and the time period for which it may be exceeded can be set. 

The power supply can be restarted via IO-Link, system communication, or by switching the supply voltage on the primary side on and off. 

Selecting the “Secure shut-off” output characteristic curve sets the following default values. 

- tshut-off = 100 ms 

- Ushut-off = 75% UN 

Figure 23 Secure shut-off output characteristic curve 

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U shut-off<br>0<br>t shut-off<br>t [s]<br> [V]<br>Out<br>U<br>**----- End of picture text -----**<br>


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## **11 IO-Link** 

The power supply is equipped with an electrically isolated IO-Link interface via the signal terminal on the front of the device. This is used to integrate data from the power supply unit into industrial networks. 

In the power supply’s delivery state, all configurable parameters are in their default setting. Data is exchanged between the power supply and IO-Link master. 

The data from the power supply can be used for the following applications, among others: 

- Device identification 

- Condition monitoring 

- Energy monitoring 

- Diagnostics 

- Configuration 

The device supports the data storage function of the IO-Link standard. The configuration data is stored in an external EEPROM. This means that it is still available if the IO-Link master is no longer connected or communication errors occur. 

## **Connection of IO-Link communication** 

IO-Link communication takes place via a three-position connection. 

|**Connection**|**Connection**|**Function**|
|---|---|---|
|3.3|L+|Positive supply voltage of IO-Link communication|
|3.4||Data channel|
|3.5|L-|0 V power supply of IO-Link communication|



Figure 24 QUINT4-PS and IO-Link master 

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2.1    2.2  2.3  2.4      2.5<br>+       +<br>Output DC<br>UOut Signal<br>13 3.1<br>14 3.2<br>L+ 3.3<br>3.4<br>L- 3.5<br>3.6<br>> 100% Boost<br>> 75%> 50% PO ut<br>DC OK<br>IO -Link<br>L+<br>Input AC<br>L1/ L2 L3/+ C/Q<br>1.1 1.2 1.3 1.4<br>L-<br>QUINT POWER<br>-Link<br>IO<br>IO LINK MASTER<br>**----- End of picture text -----**<br>


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## **12 System communication** 

System communication combines the data from the power supply with the data from the CAPAROC circuit breaker system or the QUINT UPS uninterruptible power supply. The data can thus be bundled together and transferred to a higher-level controller via one interface. 

## **12.1 Connection of system communication** 

System communication takes place via a two-position connection. An additional 24 V supply voltage (e.g., from the battery) can be connected to L+ as an option. This means that system communication is also available without primary-side input voltage. 

|**Connection**|**Connection**|**Function**|
|---|---|---|
|3.5|L-|Reference potential for system communication|
|3.6||Data channel|



## **12.2 System configuration with QUINT UPS** 

The data from the power supply is forwarded to the QUINT UPS uninterruptible power supply via the system interface and integrated into the network protocol. Communication is bidirectional. Data can be read and parameterized. 

The data register is described in the data sheet for the QUINT UPS (Item No. 107558 DB EN QUINT4-UPS/24DC/24DC/40 (USB, PN, EIP, EC)) 

Figure 25 QUINT4 PS and QUINT4 UPS 

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Profinet, Ethernet IP, Modbus TCP,<br>EtherCAT or USB<br>1.1 1.2 2.1 2.2<br>2.1    2.2  2.3  2.4      2.5<br>+       +Output DC +Input- Output+ -<br>DC 24V 20A<br>UOut Signal Signal<br>13 3.1 24V 20mA 3.1<br>14L+ 3.23.3 Alarm 3.23.3<br>L- 3.43.53.6 RemotePS BoostReadyBat.-Mode 3.43.53.63.7<br>> 100% Boost Bat.-Start 3.8<br>> 75%> 50% PO ut SG nd 3.9<br>DC OK Alarm SOC<br>IO -Link Bat.-Mode<br>DC OK<br>t max [min]<br>3 2 1 (Default 0.5) Custom �<br>5 PC-Mode<br>10 15 20<br>Service<br>1.1 1.2L1/Input AC 1.3L2 L3/+1.4 Battery + -DC 24V > 6 secPress Battery 4.1+ 4.2DC- 4.3 24V T 15A 32V<br>4.1 4.2 4.3<br>UPS BATTERY<br>QUINT POWER<br>QUINT DC-UPS<br>-Link<br>IO<br>**----- End of picture text -----**<br>


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In addition, the power supply receives relevant data from the QUINT UPS via system communication and can output this via IO-Link. The data register is described in Section 18 (Attachment - register tables). 

Figure 26 QUINT4 PS, QUINT4 UPS, and IO-Link master 

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1.1 1.2 2.1 2.2<br>2.1    2.2  2.3  2.4      2.5<br>+       + + - + -<br>Output DC Input Output<br>DC 24V 20A<br>UOut Signal Signal<br>13 3.1 24V 20mA 3.1<br>14L+ 3.23.3 Alarm 3.23.3<br>L- 3.43.53.6 RemotePS BoostReadyBat.-Mode 3.43.53.63.7<br>> 100% Boost Bat.-Start 3.8<br>> 75%> 50% PO ut SG nd 3.9<br>DC OK Alarm SOC<br>IO -Link Bat.-Mode<br>DC OK<br>t max [min]<br>3 2 1 (Default 0.5) Custom �<br>5 PC-Mode<br>10 15 20<br>Service L+<br>1.1 1.2L1/Input AC 1.3L2 L3/+1.4 Battery + -DC 24V > 6 secPress Battery 4.1+ 4.2DC- 4.3 24V T 15A 32V L-C/Q<br>4.1 4.2 4.3<br>UPS BATTERY<br>QUINT POWER<br>QUINT DC-UPS<br>-Link<br>IO<br>IO LINK MASTER<br>**----- End of picture text -----**<br>


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## **12.3 System configuration with CAPAROC** 

The data from the power supply is forwarded to the CAPAROC circuit breaker system via the system interface and integrated into the network protocol. Communication is bidirectional. Data can be read and parameterized. The data register is described in the “CAPAROC: System and installation” user manual (Item No. 109745). 

Figure 27 QUINT4 PS and CAPAROC 

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2.1    2.2  2.3  2.4      2.5<br>+       +<br>Output DC<br>1 1 1 1 1 1<br>UOut Signal 6 8 6 8 6 8 6 8<br>13 3.1 4 10 4 10 4 10 4 10 2 2<br>14 3.2 2 RC 2 RC 2 RC 2 RC<br>L+ 3.3<br>3.4 2 2 2 2 3 3<br>L- 3.53.6 4 6 8 10 4 6 8 10 4 6 8 10 4 6 8 10 4 4<br>> 100% Boost 2 RC 2 RC 2 RC 2 RC<br>> 75%> 50% PO ut<br>DC OK<br>IO -Link<br>Input AC<br>L1/ L2 L3/+<br>1.1 1.2 1.3 1.4<br>QUINT POWER<br>-Link CAPAROC PD 0V CAPAROC PD 0V<br>IO<br>**----- End of picture text -----**<br>


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## **13 Boost currents** 

The power supply provides the static boost (IStat. Boost) for a sustained load supply or the time-limited dynamic boost (IDyn. Boost). 

## **13.1 Static Boost** 

For system expansion purposes, the sustained static boost (IStat. Boost) supports the load supply with up to 112% of the nominal current of the power supply. The static boost is available at an ambient temperature of up to 40°C. 

Use the following tables to determine the required recovery time (tPause) at the maximum dynamic boost current (IDyn. Boost[) based on the following values:] 

- IBase Load 

- Duration of the boost current (tDyn. Boost) 

- Ambient temperature (40 °C or 60 °C) 

   - If a current that is lower than the maximum available dynamic boost current (IDyn. Boost) is required for the same period, the recovery time may (tPause) decrease. 

Figure 28 Performance characteristic in static boost 

## ]]\ **13.2.1 Recovery times at an ambient temperature of** 150% **40 °C** 

Figure 30 Required recovery times at ≤ 40°C 

## **13.2 Dynamic Boost** 

Dynamic boost (IDyn. Boost) delivers up to 150 % of the power supply nominal current to supply high loads. This temporary power supply to the load lasts a maximum of 5 s at an ambient temperature of up to 60 °C. The energy supplied adaptively for the load supply and the recovery time (tPause) are calculated based on the specific load situation using algorithms (see recovery time tables). 

Figure 29 Basic curve of the dynamic boost process 

**==> picture [215 x 109] intentionally omitted <==**

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IDyn.Boost tDyn.Boost tDyn.Boost<br>IBase Load tPause<br>e e<br>t [s]<br>[A]<br>IOut<br>**----- End of picture text -----**<br>


## **13.2.2 Recovery times at an ambient temperature of 60 °C** 

Figure 31 Required recovery times at ≤ 60°C 

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## **13.2.3 Example: Determining the recovery time** 

## **(tPause)** 

At an output current (IBase Load) of 20 A, the dynamic output current (IDyn. Boost) of 60 A increases for 2 s (tDyn. Boost). After a recovery time (tPause) of 6 s, the dynamic boost is available once again. 

Figure 32 Example recovery time for ≤ 40°C 

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## **14 SFB Technology** 

SFB Technology (selective fuse breaking) can be used to quickly and reliably trip miniature circuit breakers and fuses connected on the secondary side. In the event of a short circuit on the secondary side, the power supply supplies up to 6 times the nominal current for 15 ms. The faulty current path is switched off selectively. 

Loads that are connected in parallel are still supplied with energy. Operation of these system parts is ensured. In order to always enable the reliable tripping of circuit breakers and fuses, certain framework conditions must be observed (see SFB configuration section). 

The U/I Advanced output characteristic curve supports SFB Technology. 

## **14.3 SFB configuration** 

Observe the following framework conditions for determining the maximum distance between the power supply and load: 

- The performance class of the power supply 

- The cross section of the connecting cable 

- The tripping characteristic of the fuse component 

- Figure 34 Schematic diagram of the maximum cable length 

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**----- Start of picture text -----**<br>
+ +<br>Power supply unit Load<br>- -<br>l<br>**----- End of picture text -----**<br>


## **14.1 Tripping circuit breakers** 

The circuit breaker is tripped by the high SFB current of the power supply, typically within 3 to 5 ms. As a result, voltage dips at loads that are connected in parallel are avoided. 

Figure 33 SFB pulse trips circuit breakers 

**==> picture [218 x 105] intentionally omitted <==**

**----- Start of picture text -----**<br>
6x IN<br>typ. 3 - 5 ms<br>IN<br>0<br>t [s]<br>I [A]<br>**----- End of picture text -----**<br>


## **14.2 Tripping a fuse** 

Fuses are tripped by melting the predetermined breaking point inside the fuse capsule. The tripping characteristic of the fuse is described by the melting integral (I²t). A high current is crucial in order to achieve a very short tripping time. 

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## **14.4 Maximum distance between the power supply and load** 

The distances given in the table are worst-case values and therefore cover the entire tolerance range for the magnetic tripping of circuit breakers. The possible distances are often greater in practice. 

## **14.4.1 Thermomagnetic device circuit breaker, type: Phoenix Contact CB TM1 SFB** 

|**Maximum distance l [m] with device circuit**<br>**breaker**|**Maximum distance l [m] with device circuit**<br>**breaker**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|
|---|---|---|---|---|---|---|---|---|---|
|||**A [mm²]**|**0.75**|**1.0**|**1.5**|**2.5**|**4.0**|**6.0**|**10.0**|
|||**AWG**|**19**|**18**|**16**|**14**|**12**|**10**|**8**|
|Phoenix Contact|CB TM1 1A SFB P||27|36|54|91|< 130|< 200|< 300|
||CB TM1 2A SFB P||18|25|37|63|< 100|< 140|< 220|
||CB TM1 3A SFB P||13|18|27|46|73|< 100|< 160|
||CB TM1 4A SFB P||10|14|21|35|57|86|< 140|
||CB TM1 5A SFB P||8|11|17|29|46|70|< 100|
||CB TM1 6A SFB P||7|9|14|24|39|58|97|
||CB TM1 8A SFB P||--|7|11|19|31|46|78|
||CB TM1 10A SFB P||--|5|7|12|20|30|51|
||CB TM1 12A SFB P||--|--|5|9|14|21|36|
||CB TM1 16A SFB P||--|--|3|5|8|12|20|



The cable lengths determined are based on the following parameters: 

Tripping: DC correction factor (0 Hz): Characteristics: 

Ambient temperature: Internal resistance Ri of the device circuit breaker: Comments: 

magnetic Phoenix Contact = 1,0 C Characteristic C (10 times the rated current) x correction factor +20 °C taken into consideration 

In addition to the short-circuit current, the power supply unit also supplies half the nominal current for load paths connected in parallel. 

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## **14.4.2 Thermomagnetic circuit breaker, type: Siemens 5SY, ABB S200** 

|**Maximum distance l [m] with circuit breaker**|**Maximum distance l [m] with circuit breaker**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|
|---|---|---|---|---|---|---|---|---|---|
|||**A [mm²]**|**0.75**|**1.0**|**1.5**|**2.5**|**4.0**|**6.0**|**10.0**|
|||**AWG**|**18**|**(17)**|**16**|**14**|**12**|**10**|**8**|
|Siemens 5SY|A1||78|105|157|263|420|631|1052|
||A1.6||58|77|116|194|311|467|779|
||A2||49|65|98|164|262|394|657|
||A3||35|47|71|118|190|285|475|
||A4||27|36|54|90|144|217|362|
||A6||18|25|37|62|100|150|250|
||A8||14|19|28|48|76|115|192|
||A10||11|15|23|38|61|92|154|
||A13||8|11|17|29|47|71|119|
||A16||7|9|14|24|39|58|97|
||A20||5|7|11|19|31|46|78|
||A25||4|5|8|13|21|32|53|
||A32||2|3|5|8|13|20|33|
||A40||1|2|3|5|8|13|22|
||B2||28|37|56|93|149|224|374|
||B4||16|21|32|53|85|128|214|
||B6||10|14|21|36|57|86|144|
||B10||6|9|13|23|36|55|92|
||B13||5|6|10|17|27|41|68|
||B16||3|4|7|11|18|28|47|
||B20||2|3|4|7|12|18|30|
||B25||1|2|3|5|8|12|20|
||C1||10|14|21|35|56|84|141|
||C1.6||12|17|25|42|68|102|171|
||C2||11|15|23|39|62|94|157|
||C3||9|12|18|30|48|72|121|
||C4||7|9|14|24|38|58|97|
||C6||5|6|10|16|27|40|67|
||C8||3|4|6|11|17|26|44|
||C10||2|2|4|7|11|17|29|
||C13||1|1|2|4|6|10|17|



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|**Maximum distance l [m] with circuit breaker**|**Maximum distance l [m] with circuit breaker**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|
|---|---|---|---|---|---|---|---|---|---|
|||**A [mm²]**|**0.75**|**1.0**|**1.5**|**2.5**|**4.0**|**6.0**|**10.0**|
|||**AWG**|**18**|**(17)**|**16**|**14**|**12**|**10**|**8**|
|ABB S200|B6||10|13|20|33|53|80|133|
||B8||8|10|16|26|43|64|107|
||B10||6|8|12|21|34|51|85|
||B13||4|5|8|14|23|35|59|
||B16||3|4|6|10|16|24|41|
||B20||1|2|3|6|10|15|26|
||B25||1|1|2|4|6|10|17|
||C1||3|4|6|11|17|26|44|
||C1.6||7|10|15|25|41|62|103|
||C2||7|9|14|23|38|57|95|
||C3||8|10|16|26|42|64|107|
||C4||6|8|12|20|32|48|81|
||C6||4|5|8|14|23|34|57|
||C8||2|3|5|9|15|23|38|
||C10||1|2|3|6|9|14|24|
||C13||1|1|2|3|5|8|13|
||Z1||64|85|128|214|343|514|857|
||Z1.6||46|62|93|156|250|375|625|
||Z2||42|57|85|143|229|343|573|
||Z3||33|44|66|110|176|264|441|
||Z4||24|33|49|82|132|198|331|
||Z6||16|21|32|54|87|131|219|
||Z8||12|17|25|42|68|102|171|
||Z10||10|14|21|36|57|86|144|
||Z16||6|9|13|22|36|54|90|



The cable lengths determined are based on the following parameters: 

Tripping: DC correction factor (0 Hz): Characteristics: 

Ambient temperature: Internal resistance Ri of the device circuit breaker: 

Comments: 

magnetic 

Siemens = 1.4; ABB = 1.5 

A, B, C, Z 

Characteristic A (3 times the rated current) x correction factor Characteristic B (5 times the rated current) x correction factor Characteristic C (10 times the rated current) x correction factor Characteristic Z (3 times the rated current) x correction factor +20 °C 

taken into consideration 

In addition to the short-circuit current, the power supply unit also supplies half the nominal current for load paths connected in parallel. 

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## **14.4.3 Fuse, type: Cooper Bussmann GMA xA, GMC xA** 

|**Maximum distance**<br>**fuse**|**l [m] with**|**Melting integral I²t**<br>**[A²s]**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|**Conductor cross section**|
|---|---|---|---|---|---|---|---|---|---|---|
||||**A [mm²]**|**0.75**|**1.0**|**1.5**|**2.5**|**4.0**|**6.0**|**10.0**|
||||**AWG**|**18**|**(17)**|**16**|**14**|**12**|**10**|**8**|
|Cooper Bussmann|GMA 1A|0.48||48|64|97|162|259|388|648|
||GMA 1.25A|0.84||36|49|73|122|196|294|490|
||GMA 1.5A|1.6||26|35|53|88|141|212|354|
||GMA 1.6A|2||23|31|47|79|127|190|317|
||GMA 2A|3.1||19|25|38|63|101|152|254|
||GMA 2,5A|4.9||15|20|30|51|81|122|204|
||GMA 3A|8.8||11|15|22|37|60|90|151|
||GMA 3,15A|9.7||10|14|21|36|57|86|144|
||GMA 3,5A|13||9|12|18|31|49|74|124|
||GMA 4A|19||7|10|15|25|41|61|103|
||GMA 5A|29||6|8|12|20|33|50|83|
||GMC 1A|1.8||23|31|47|78|125|188|314|
||GMC 1,25A|3.4||17|23|34|58|93|139|233|
||GMC 1,5A|5.4||13|18|27|46|74|111|185|
||GMC 1,6A|5.8||13|18|27|45|72|108|180|
||GMC 2A|8.9||11|14|22|37|59|89|149|
||GMC 2.5A|13||9|12|18|30|49|74|123|
||GMC 3A|19||7|10|15|25|41|61|103|
||GMC 3,15A|23||6|9|13|23|37|55|93|
||GMC 3,5A|25||6|8|13|22|35|53|89|
||GMC 4A|36||5|7|11|18|29|44|74|



The cable lengths determined are based on the following parameters: 

Tripping: thermal Characteristics: Cooper Bussmann GMA (fast-blow - fast acting) Cooper Bussmann GMC (medium-blow - medium time delay) Ambient temperature: +20 °C Internal resistance Ri of the fuse: taken into consideration Comments: 

In addition to the short-circuit current, the power supply unit also supplies half the nominal current for load paths connected in parallel. 

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## **15 Signaling** 

A floating signal contact is available for preventive function monitoring of the power supply. 

The current device status of the power supply is signaled using five LED status indicators. The function of each LED status indicator is assigned to a fixed event. 

The signal outputs are configured via the communication interfaces. 

## **15.1 Location and function of the signaling elements** 

Figure 35 Position of signaling elements 

|**Key**<br>**10**<br>**9**<br>**8**<br>**7**<br>**6**|||UOut<br>> 100%   Boost<br>> 75%<br>> 50%<br>POut<br>DC OK<br>13<br>14<br>L+<br>L-<br>Signal<br>3.1<br>3.2<br>3.3<br>3.4<br>3.5<br>3.6<br>~~**IO**~~-Link||
|---|---|---|---|---|
|**No.**||**Signaling elements**|||
|1||13/14 floating switch contact (N/O contact)|||
|2||L+: 24 V for IO-Link|||
|3||: IO-Link communication signal|||
|4||L-: Reference potential for IO-Link and system com-<br>munication, electrically isolated from the output side|||
|5||: System communication with QUINT UPS or<br>CAPAROC PM PN|||
|6||IO-Link LED status indicator|||
|7||LED status indicator DC OK|||
|||LED on: UOut> 90% x USet|||
|||LED flashing: UOut< 90 % x USet|||
|8||LED status indicator POut>50 % (output power<br>>480 W)|||
|9||LED status indicator POut>75 % (output power<br>>720 W)|||
|10||LED status indicator POut>100 %, boost mode (out-<br>put power >960 W)|||



## **15.1.1 Floating signal contact** 

In the default configuration, the floating switch contact opens to indicate that the set output voltage has been undershot by more than 10 % (UOut < 0.9 x UN). Signals and ohmic loads can be switched. For heavily inductive loads (e. g. a relay), a suitable protective circuit (e. g. a freewheeling diode) is necessary. 

Figure 36 Signaling 

**==> picture [189 x 87] intentionally omitted <==**

**----- Start of picture text -----**<br>
13 3.1 max. [30 V AC 500mA] 24 V DC 1A PLC<br>Digital Input<br>14 3.2<br>DI x<br>L+ 3.3<br>3.4<br>L- 3.5 GND<br>3.6<br>**----- End of picture text -----**<br>


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## **15.2 Preventive function monitoring** 

In contrast to the default signaling set upon delivery, you can customize this to the specific needs of the system. The following signal options can be selected to signal system states. 

|**QUINT POWER default settings upon delivery**|**QUINT POWER default settings upon delivery**|**QUINT POWER default settings upon delivery**|**Relay 13/14**<br>**floating**<br>**24 V DC / ≤ 1 A**<br>**30 V AC / ≤ 0.5 A**|
|---|---|---|---|
|V<br>ee<br>of|Output voltage<br>ee<br>of|①25 ... 135 %<br>②90 %<br>ee<br>|Default<br>ee<br>|
|A<br>of|Output current<br>of|①5 ... 150 %<br>②100 %<br>|<br>|
|P<br>ofe<br>ee|Output power<br>ofe<br>|①5 ... 150 %<br>②100 %<br>ee<br>|<br>e<br>|
|**0 0 0 h**<br>ee|Operating hours<br>|①0 ...h<br>②10 years<br>|<br>|
|ee~~e~~|Early warning of high temperature<br>~~e~~|Warning of derating<br>~~e~~e<br>ee|<br>e|
|**OVP**<br>~~a~~|Voltage limitation active<br>~~a~~|Surge voltage at output<br>~~a~~<br>ee<br>ee|<br>~~a~~|
|**ACOK**<br>~~a~~<br>Op|Input voltage OK<br>~~a~~<br>Op|10 ms after mains failure<br>ee<br>~~a~~<br>ee<br>ee|<br>~~a~~|
|**3ACOK**<br>a<br>Op|Phase monitoring<br>a<br>Op|Warning 2AC operation<br>ee<br>a<br>ee|<br>a|
|Op<br>ee|Remaining service life<br>Op<br>ee|Warning preventive maintenance<br>ee<br>ee|<br>ee|
|L1<br>L3<br>L2<br>Op<br>ee|Phase sequence monitoring<br>Op<br>ee|Warning incorrect direction of rotation<br>ee<br>ee|<br>ee|



**Key** 

The use of logic operations to link multiple signal options to one control is also possible. The power supply is configured via IO-Link or via system communication. 

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## **15.3 Description of signaling** 

## **15.3.1 Output voltage** 

Signals whether the output voltage is in the preset range. If the output voltage of the power supply falls below the set threshold value, the signal state changes. 

## **Example of use** 

Indicates whether the connected load is being supplied. Used to quickly detect a load circuit that is not being supplied (e.g., in the event of mains failure or short circuit in the supply line). 

## **15.3.2 Output current** 

If the output current of the power supply exceeds the set threshold value, the signal state changes. 

## **Example of use** 

In the case of system extensions, loads are added. This increases the utilization of the power supply. Preventive function monitoring detects critical operating states in good time. Action can be taken before system downtime occurs. 

is true if a control cabinet fan or cooling system fails. In the event of any form of overtemperature, the power supply provides a warning by means of this signal, well before the supply of the loads is in any danger. 

Specifications regarding the available output power (see derating section). 

## **15.3.6 Voltage limitation active** 

If the circuit inside the device for protecting against surge voltages is activated at the output, the signal state changes. 

## **Example of use** 

Normative requirements stipulate that an upper voltage limit must be observed at the output in the event of an error. It must therefore be ensured, for example, that safety-related controllers are not supplied with an output voltage that exceeds 32 V DC, even in the event of an error. If foreign bodies (ferrules, screws, etc.) enter the power supply and generate an error, the signal state changes. 

## **15.3.7 Input voltage OK** 

The power supply signals a mains failure at least 10 ms before shutting off. 

## **15.3.3 Output power** 

If the output power of the power supply exceeds the set threshold value, the signal state changes. 

## **Example of use** 

In the case of system extensions, loads are added. This increases the utilization of the power supply. Preventive function monitoring detects critical operating states in good time. Action can be taken before system downtime occurs. 

## **15.3.4 Operating hours** 

If the preset operating time of the power supply is exceeded, the signal state changes. 

## **Example of use** 

For systems with a very long operating time, such as wind turbine generators or refineries, maintenance intervals are planned. You can even schedule the maintenance date during configuration based on the ambient temperature and utilization of the power supply. 

## **15.3.5 Early warning of high temperature** 

Before the power supply protects itself through power derating in the event of an overtemperature, the signal state changes. 

## **Example of use** 

In the event of a mains failure, the power supply continues to supply the load with nominal power for at least 20 ms. Failure of the input voltage is signaled 10 ms before the output voltage falls, which means that this information is provided to the higher-level controller at an early stage. System states can therefore be stored promptly without any loss of data as a result of the unexpected failure of the supply voltage. 

## **15.3.8 Phase monitoring (3AC operation)** 

If one phase fails completely or the voltage difference between the outer conductors is > 10%, the signal state changes. 

## **Example of use** 

It is possible that the voltage of one phase may drop or fail completely due to an asymmetrical load on the 3-phase supply network or a fuse tripping. If one phase fails completely or the voltage difference between the outer conductors is > 10%, the power supply signals 2AC operation. Permanent supply of the load by the power supply is still ensured in 2AC operation. 

Specifications regarding the available output power (see derating section). 

## **Example of use** 

Outdoor control cabinets can reach a high internal temperature depending on the position of the sun. The same 

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## **15.3.9 Service life monitoring** 

If the remaining service life calculated on the basis of the operating data falls below the set threshold value, the signal state changes. 

## **Example of use** 

With the power supply, the remaining service life is determined over the entire operating time. This is based on the operating and ambient parameters that influence the service life of a power supply. For example, temperature, output current, input voltage, and mains frequency are taken into consideration. 

to the > 50%  LED. If the required output power is then greater than the nominal device power, the power supply operates in boost mode. In boost mode, the > 100% LED additionally lights up yellow. 

The green IO-Link LED lights up when an IO-Link master is connected and supply voltage L+ and L- is thus present. The LED flashes when communication is also active between the power supply and the IO-Link master. 

As soon as the calculated remaining service life falls below the set threshold value, the signal changes. Device replacement can thus be scheduled as necessary. This protects against unexpected system failure. 

When the service life expires, this does not necessarily result in device failure. However, the technical data of the power supply may no longer be maintained due to aging and wear. 

## **15.3.10 Phase sequence monitoring** 

When the supply voltage is applied, the relay closes when all three phases are present and the phase sequence is correct. In the event that a phase fails or there is an incorrectly connected rotating field, a signal change occurs. 

## **Example of use** 

If the three-phase supply network is connected incorrectly by mixing up two of the line conductors, this can affect the direction of rotation of motors that are connected in parallel. This may lead to undefined system states. 

Some 3AC loads (e.g., heat pumps) may only be started once it has been ensured that the rotating field is connected correctly. 

The power supply itself can be operated with inverted phase sequence and provides information on the rotating field direction for loads connected in parallel. 

## **15.4 LED status indicators** 

Five LED status indicators are integrated in the front of the power supply, which indicate the current device state. 

The green DC OK LED indicates the current status of the output voltage (UOut). The DC OK LED is permanently on as long as the value of the output voltage UOut is ≥ 0.9 x USet. If the value of the output voltage is < 0.9 x USet, the green DC OK LED flashes. 

Depending on the required output power of the connected load, the three POut LEDs, which indicate the current output power, light up. Assuming that the provided output power is > 50%  of the nominal output power, the > 50%  LED lights up green. If the demanded power continues to increase until it is above  75%, the > 75%  LED lights up green in addition 

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## **15.5 U/I Advanced characteristic curve signaling** 

The following table shows the standard assignment for signaling for the U/I Advanced characteristic curves which is set by default. 

Figure 37 Signal image for U/I Advanced 

**==> picture [323 x 109] intentionally omitted <==**

**----- Start of picture text -----**<br>
Normal operation BOOST Overload operation<br> POut < PN  POut > PN  UOut < 0.9 x USet<br>LED: POut >100 % yellow<br>LED: POut > 75 %<br>LED: POut > 50 % green<br>LED: DC OK<br>Relay: 13/14, DC OK default closed closed open<br>**----- End of picture text -----**<br>


**==> picture [137 x 10] intentionally omitted <==**

**----- Start of picture text -----**<br>
LED off LED on LED flashing<br>**----- End of picture text -----**<br>


## **15.6 Smart HICCUP characteristic curve signaling** 

The following table shows the standard assignment for signaling for the Smart HICCUP characteristic curve. 

Figure 38 Signal image for Smart HICCUP 

**==> picture [323 x 109] intentionally omitted <==**

**----- Start of picture text -----**<br>
Normal operation BOOST Overload operation<br> POut < PN  POut > PN  UOut < 0.9 x USet<br>LED: POut >100 % yellow<br>LED: POut > 75 %<br>LED: POut > 50 % green<br>LED: DC OK<br>Relay: 13/14, DC OK default closed closed open<br>**----- End of picture text -----**<br>


**==> picture [137 x 9] intentionally omitted <==**

**----- Start of picture text -----**<br>
LED off LED on LED flashing<br>**----- End of picture text -----**<br>


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## **15.7 FUSE MODE characteristic curve signaling** 

The following table shows the standard assignment for signaling for the FUSE MODE characteristic curve. 

Figure 39 Signal image for FUSE MODE 

**==> picture [323 x 109] intentionally omitted <==**

**----- Start of picture text -----**<br>
Normal operation BOOST Overload operation<br> POut < PN  POut > PN  I > IFuse for t > tFuse<br>LED: POut >100 % yellow<br>LED: POut > 75 %<br>LED: POut > 50 % green<br>LED: DC OK<br>Relay: 13/14, DC OK default closed closed open<br>**----- End of picture text -----**<br>


**==> picture [137 x 10] intentionally omitted <==**

**----- Start of picture text -----**<br>
LED off LED on LED flashing<br>**----- End of picture text -----**<br>


## **15.8 Signaling for Secure shut-off characteristic curve** 

The following table shows the standard assignment for signaling for the Secure shut-off characteristic curve. Figure 40 Signal image secure shut-off characteristic curve 

**==> picture [323 x 109] intentionally omitted <==**

**----- Start of picture text -----**<br>
Normal operation BOOST Overload operation<br> POut < PN  POut > PN U > UFuse for t > tFuse<br>LED: POut >100 % yellow<br>LED: POut > 75 %<br>LED: POut > 50 % green<br>LED: DC OK<br>Relay: 13/14, DC OK default closed closed open<br>**----- End of picture text -----**<br>


**==> picture [137 x 9] intentionally omitted <==**

**----- Start of picture text -----**<br>
LED off LED on LED flashing<br>**----- End of picture text -----**<br>


## **15.9 SLEEP MODE signaling** 

In SLEEP MODE, all LEDs are off and the relay switching contact is open. 

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## **15.10 Special immunity for the signal level** 

## **15.10.1 Surge protection for the high-voltage area at the power plant** 

Surge protection (Phoenix Contact Item No.: 2907925 or comparable protection) must be implemented for power plant applications when using signal connection types t (telecommunications area), h (high voltage area) or f (field) in accordance with IEC/EN 61850-3 or signal connection types 3 (process area) and 4 (high voltage area) in accordance with EN 61000-6-5. 

## **15.10.2 Surge protection for signals in railway applications** 

Surge protection (Phoenix Contact Item No.: 2907925 or comparable protection) must be implemented for railway applications when using signals in accordance with EN 62236-4 and EN 50121-4. 

## **15.10.3 Surge protection for devices in use in safety-related systems** 

Surge protection (Phoenix Contact Item No.: 2907925 or comparable protection) must be implemented for railway applications when using signals in accordance with EN 61000-6-7 for devices provided to perform functions in safety-related systems (functional safety) in industrial settings. 

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## **16 Operating modes** 

## **16.1 Series operation** 

To double the output voltage, connect two power supplies in series. Only use power supplies with the same performance class and configuration for series operation. If two 24 V DC power supplies are connected in series, an output voltage of 48 V DC is available to supply the loads. 

Figure 41 Schematic diagrams in series operation 

**==> picture [207 x 117] intentionally omitted <==**

**----- Start of picture text -----**<br>
+ + +<br>- - +24 V -<br>+48 V -48 V<br>+ + -24 V +<br>- - -<br>**----- End of picture text -----**<br>


## **16.2 Parallel operation** 

You can connect several power supplies in parallel in order to increase the power or to supply the loads redundantly. 

Figure 42 Schematic diagram in parallel operation 

**==> picture [198 x 120] intentionally omitted <==**

**----- Start of picture text -----**<br>
IN IN<br>+ � + �<br>+<br>�<br>� = IN<br>+ �<br>**----- End of picture text -----**<br>


Observe the following points when carrying out parallel connection: 

1. Use power supplies of the same type and performance class 

2. Setting the same output voltages 

3. Using the same cable cross sections for wiring 

4. Using the same cable lengths for the DC convergence point 

5. Operating power supplies in the same temperature environment 

6. When three or more power supplies are connected in parallel, each output must be protected (e.g., with circuit breakers, fuses or decoupling modules) 

   - We recommend the configuration “parallel operation” for a parallel connection. 

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## **16.2.1 Redundancy operation** 

Redundant circuits are suitable for supplying systems and system parts which place particularly high demands on operational reliability. 

If energy is to be supplied to the load with 1+1 redundancy, two power supplies of the same type and performance class must be used. In the event of an error, it must be ensured that one of the power supplies is able to provide the total required power for the load. This means that in redundancy mode, two 20 A power supplies supply a load with a nominal current of 20 A, for example. During normal operation of the power supplies, each power supply therefore supplies 10 A. 

Always use cables with the same cross sections and lengths when wiring the power supplies on the DC output side. 

Redundancy modules can be used to 100% decouple two power supplies from one another and to ensure the supply. A distinction is made here between passive and active redundancy modules. Optimum decoupling with simultaneous monitoring and minimal power dissipation can be achieved with the QUINT ORING or QUINT S-ORING active redundancy module. 

Figure 43 Schematic diagram, redundant operation with QUINT ORING 

**==> picture [198 x 119] intentionally omitted <==**

**----- Start of picture text -----**<br>
IN IN<br>+ � + �<br>+<br>�<br>+ � � = IN<br>**----- End of picture text -----**<br>


Using the signaling settings, you can monitor whether both power supplies are being operated with ≤ half the nominal load. In the case of system extension, an overload is prevented if one of the power supplies fails. 

## **16.2.2 Increased power** 

When n power supplies are connected in parallel, the output current is increased to n x IN. Parallel connection for increased power is used when extending existing systems. If the individual power supply does not cover the current consumption of the most powerful load, parallel connection of power supplies is recommended. 

When three or more power supplies are connected in parallel, each output must be protected separately, e.g., by a circuit breaker, fuse or decoupling module such as QUINT ORING, QUINT S-ORING or QUINT DIODE. 

Figure 45 Schematic diagram of increased performance 

**==> picture [220 x 133] intentionally omitted <==**

**----- Start of picture text -----**<br>
IN IN<br>+ – + –<br>+<br>–<br>I � = 2 x I<br>N<br>+ –<br>**----- End of picture text -----**<br>


Figure 44 Schematic diagram, redundant operation with QUINT S-ORING 

**==> picture [198 x 126] intentionally omitted <==**

**----- Start of picture text -----**<br>
IN IN<br>+ � + �<br>+<br>�<br>� = IN<br>**----- End of picture text -----**<br>


Certain specifications apply in redundancy operation with regard to the configuration of the keepout areas. In redundancy operation, the power supplies are operated with maximum half the nominal power. The keepout areas are therefore reduced. 

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## **17 Derating** 

The QUINT POWER power supply runs in nominal operation without any limitations. For operation outside the nominal range, the following points should be observed depending on the type of use. 

## **17.1 Ambient temperature** 

When operating the power supply at an ambient temperature of > 60 °C, a power derating of 2.5 %/K should be observed. Up to an ambient temperature of 40 °C, the power supply can take power from the static boost for a sustained period. In the 40 °C to 60 °C temperature range, the power supply can output more than the nominal power for a sustained period. 

Figure 46 Output power depending on the ambient temperature 

**==> picture [228 x 121] intentionally omitted <==**

**----- Start of picture text -----**<br>
����������� ����<br>����<br>������������ ����<br>�� ����<br>���<br>��� �� �� ��<br>�������<br>����<br>���<br>�<br>**----- End of picture text -----**<br>


## **17.3 Installation height** 

The power supply can be operated at an installation height of up to 2000 m without any limitations. Different data applies for installation locations above 2000 m due to the differing air pressure and the reduced convection cooling associated with this (see technical data section). The data provided is based on the results of pressure chamber testing performed by an accredited test laboratory. 

Figure 48 Output power depending on the installation height 

**==> picture [225 x 121] intentionally omitted <==**

**----- Start of picture text -----**<br>
175<br>150 �<br>125 �<br>100<br>75<br>50 � = P N      100 %  �  60 °C �<br>� = PStat.112 %  �  40 °C<br>25 � = P  150 %  �  60 °C<br>Dyn.<br>0<br>0 1000 2000 3000 4000 5000<br>H [m]<br>[%]<br>Out<br>  P<br>**----- End of picture text -----**<br>


## **17.2 Input voltage** 

The power supply is designed for operation in a three-phase network. If one phase fails or drops in the event of a fault (e.g., due to starting a load on the affected phase as in the case of a cooling unit), sustained operation on two phases is possible. This type of scenario is already covered for QUINT POWER by virtue of its approval. 

**==> picture [234 x 136] intentionally omitted <==**

**----- Start of picture text -----**<br>
Figure 47 Output power in 2AC operation<br>�� ����<br>� ���<br>� [�����������������������]<br>��� �� �� �� ��<br>�������<br>���<br>�����<br>**----- End of picture text -----**<br>


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## **17.4 Position-dependent derating** 

The fanless convection-cooled power supply can be snapped onto all DIN rails according to EN 60715. 

The power supply should be mounted horizontally for heat dissipation reasons (AC connection terminal blocks facing downward). Please observe the derating for any mounting other than the normal mounting position. Reduce the output power based on the prevailing ambient temperature. 

The recommended output power for different mounting positions and ambient temperatures can be found in the characteristic curves below. 

Exceeding these values will reduce the service life of the power supply. 

## **17.4.1 Normal mounting position** 

**17.4.2 Rotated mounting position 90° Z-axis** 

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## **17.4.3 Rotated mounting position 180° Z-axis** 

**==> picture [79 x 31] intentionally omitted <==**

**----- Start of picture text -----**<br>
2s0 OP_ ioe<br>**----- End of picture text -----**<br>


## **17.4.4 Rotated mounting position 270° Z-axis** 

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## **17.4.5 Rotated mounting position 90° X-axis** 

## **17.4.6 Rotated mounting position 270° X-axis** 

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## **18 Attachment – Register tables** 

## **18.1 Cyclic data** 

The power supply provides the IO-Link master with the process data based on a cycle time of 2 ms. 

The process data contains the current output current, the output voltage, the operating mode, and the status messages described in Section 15.3. 

|**Index**|**Sub-**|**Description**|**Value [unit]**|**Size**|**Acc**|
|---|---|---|---|---|---|
||**index**||||**ess**|
|0x28hex|1|Status output|0: Output voltage > Threshold output voltage (0x83hex)|1 bit|RO|
|40dez||voltage|1: Output voltage < Threshold output voltage (0x83hex)|||
||2|Status output|0: Output power < Threshold output power (0x83hex)|1 bit|RO|
|||power|1: Output power > Threshold output power (0x83hex)|||
||3|Status operating|0: Operating time < Threshold operating time (0x83hex)|1 bit|RO|
|||time|1: Operating time > Threshold operating time (0x83hex)|||
||4|Status early|0: Warning not active|1 bit|RO|
|||warning of high|1: Warning active|||
|||temperature||||
||5|Status input|0: Input voltage OK|1 bit|RO|
|||voltage|1: Input voltage not OK|||
||6|Status voltage|0: Voltage limitation not active|1 bit|RO|
|||limitation (OVP)|1: Voltage limitation active|||
||7|Status phase|0: Phase monitoring OK (3 AC)|1 bit|RO|
|||monitoring|1: Phase failure (2 AC)|||
||8|Status lifetime|0: Remaining service life > service life threshold value (0x83hex)|1 bit|RO|
|||monitoring|1: Remaining service life < service life threshold value (0x83hex)|||
||9|Operating mode|0: Normal operation|3 bits|RO|
||||1: Startup|||
||||2: No input voltage|||
||||3: Restart (e.g., due to a secondary-side overload in U/I Advanced|||
||||mode)|||
||||4: FUSE MODE or Secure shut-off triggered: DC output switched off|||
||||5: Sleep mode active: DC output switched off|||
||||6: Mains interruption: DC output voltage still present (see input voltage|||
||||status)|||
||||7: Smart HICCUP mode: power supply restarts at regular intervals due|||
||||to a secondary-side overload.|||
||10 - 12|Reserved|0|3 bits|RO|
||13|QUINT4-UPS|0: No alarm|1 bit|RO|
|||Alarm|1: Alarm|||
|||(collective)||||
||14|QUINT4-UPS|0: No alarm|1 bit|RO|
|||Replace Battery|1: Alarm|||
||15|Output voltage|[0.01 V]|2|RO|
|||||bytes||
||16|Output current|[0.01 A]|2|RO|
|||||bytes||



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## **18.2 Acyclic diagnostic data** 

## **18.2.1 IO-Link-specific data** 

|**Index**|**Sub-**|**Description**|**Notes**|**Size**|**Acc**|
|---|---|---|---|---|---|
||**index**||||**ess**|
|0x02hex|0|System command|Command 0x81:|1 byte|WO|
|02dez|||Application reset|||
||||Resets the values from the data logging.|||
||||Command 0x82:|||
||||Default setting|||
||||Resets the power supply configuration to|||
||||the default settings.|||
|0x0Chex|0|Device access lock|Bit 2:|2 bytes|RW|
|12dez|||Local parameterization lock|||
||||Locks parameterization via system|||
||||communication and via the buttons on the|||
||||front.|||
|0x10hex|0|Vendor name||15 bytes|RO|
|16dez||||||
|0x11hex|0|Vendor text||22 bytes|RO|
|17dez||||||
|0x12hex|0|Product name||7 bytes|RO|
|18dez||||||
|0x13hex|0|Product ID|Item No.|52 bytes|RO|
|19dez||||||
|0x14hex|0|Product text||10 bytes|RO|
|20dez||||||
|0x15hex|0|Serial number|For the full serial number, the item number|4 bytes|RO|
|21dez|||must also be prefixed.|||
|0x16hex|0|Hardware version||4 bytes|RO|
|22dez||||||
|0x17hex|0|Firmware version||32 bytes|RO|
|23dez||||||
|0x18hex|0|Application-specific tag||32 bytes|RW|
|24dez||||||



## **18.2.2 Digital rating plate** 

|**Index**|**Sub-**|**Description**|**Size**|**Access**|
|---|---|---|---|---|
||**index**||||
|0x21hex|1|Physical address /Street|32 bytes|RO|
|65dec|2|Physical address/ZIP|8 bytes|RO|
||3|Physical address/City|32 bytes|RO|
||4|Physical address/State|32 bytes|RO|
||5|Physical address/Country|2 bytes|RO|
||6|Link to homepage|64 bytes|RO|
||7|Production date|1 byte|RO|



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## **18.2.3 Operating data** 

|**Index**|**Sub-**|**Description**|**Value [unit]**|**Size**|**Acc**|
|---|---|---|---|---|---|
||**index**||||**ess**|
|0x60hex|1|Total operating time|[0,1 h]|4|RO|
|96dez||||bytes||
||2|Operating time since last restart|[0,1 h]|2|RO|
|||||bytes||
||3|Temperature in the device|[K]|2|RO|
|||||bytes||
||4|Remaining service life|0 ... 5475 [d]|2|RO|
|||||bytes||
||5|SOH (State of Health)|0 ... 10000 [0,01 %]|2|RO|
|||||bytes||



## **Total operating time** 

The overall total number of operating hours since initial startup of the power supply. 

## **Operating time since last restart** 

The overall total number of operating hours since the power supply was last switched on. 

## **Temperature in the device** 

The temperature in the device is measured at the primary-side capacitor of the power supply. To output the valid temperature value, the power supply must be connected to the primary-side supply voltage. 

## **Remaining lifetime** 

The service life of a power supply very much depends on the individual operating and ambient conditions in the system. Extreme ambient temperatures can thus shorten the service life prematurely. 

With the power supply, the remaining service life is determined over the entire operating time. This is based on the operating and ambient parameters that influence the service life of a power supply. For example, temperature, output current, input voltage, and mains frequency are taken into consideration. 

Information on the remaining service life makes it possible to detect the rapid aging of devices at an early stage. Critical ambient conditions can thus be identified and possibly eliminated. 

Furthermore, needs-based device replacement protects against unexpected system failure. 

When the service life expires, this does not necessarily result in device failure. However, the technical data of the power supply may possibly no longer be maintained due to aging and wear. 

## **SOH (State of Health)** 

The SOH value indicates the remaining service life as a percentage and also supports preventive maintenance. 

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## **18.2.4 Input data** 

The information on the primary-side supply voltage can be evaluated using the index shown below. The input data is invalid if the power supply is in “No input voltage” operating mode (see Section 18.1 Cyclic data, index 0x28hex, subindex 10). 

|**Index**|**Sub-**|**Description**|**Value [unit]**|**Size**|**Acc**|
|---|---|---|---|---|---|
||**index**||||**ess**|
|0x61hex|1|Input voltage L1L2|[V]|2|RO|
|97dec||||bytes||
||2|Input voltage L2L3|[V]|2|RO|
|||||bytes||
||3|Input voltage L3L1|[V]|2|RO|
|||||bytes||
||4|Input voltage DC|[V]|2|RO|
|||||bytes||
||5|Frequency|[Hz]|2|RO|
|||||bytes||
||6|Phase sequence|0: Clockwise rotating field|1 byte|RO|
||||1: Counterclockwise rotating field|||
||||2: Invalid (2AC or DC operation)|||
||7|Input voltage AC/DC detection|0: AC|1 byte|RO|
||||1: DC|||



## **Input voltage Lx**  **Ly** 

RMS value of the phase-to-phase voltage between two phases. 

## **18.2.5 Signaling data** 

The signaling data comprises the status of relay contact 13/14 as well as the status LED display on the front of the power supply. 

|**Index**|**Sub-**|**Description**|**Value [unit]**|**Size**|**Acc**|
|---|---|---|---|---|---|
||**index**||||**ess**|
|0x63hex|1|Status Relay 13/14|0: Open|1 byte|RO|
|99dez|||255: Closed|||
||2|Status LED 1 (DC OK)|0: Off|1 byte|RO|
||||1: On|||
||||2: Flashing|||
||3|Status LED 2 (>  50  %)|0: Off|1 byte|RO|
||||1: On|||
||||2: Flashing|||
||4|Status LED 3 (>  75  %)|0: Off|1 byte|RO|
||||1: On|||
||||2: Flashing|||
||5|Status LED 4 (>  100  %)|0: Off|1 byte|RO|
||||1: On|||
||||2: Flashing|||
||6|Status LED 5 (IO-Link)|0: Off|1 byte|RO|
||||1: On|||
||||2: Flashing|||



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## **18.2.6 Data logging** 

Data that was also logged during operation can be collected using the index shown below. 

|**Index**|**Sub-**|**Description**|**Value [unit]**|**Size**|**Acc**|
|---|---|---|---|---|---|
||**index**||||**ess**|
|0x80hex|1|Minimum output voltage|[V]|2|RO|
|128dez||||bytes||
||2|Maximum output voltage|[V]|2|RO|
|||||bytes||
||3|Maximum static output current|[A]|2|RO|
|||||bytes||
||4|Maximum dynamic output current|[A]|2|RO|
|||||bytes||
||5|Minimum temperature|[K]|2|RO|
|||||bytes||
||6|Maximum temperature|[K]|2|RO|
|||||bytes||
||7|Transient counter|0 ... 65535|2|RO|
|||||bytes||
||8|Counter for SFB pulses|0 ... 65535|2|RO|
|||||bytes||
||9|Counter for OVP|0 ... 65535|2|RO|
|||||bytes||
||10|Counter for device start|0 ... 65535|2|RO|
|||||bytes||
||11|Counter for dynamic boost pulses|0 ... 65535|2|RO|
|||||bytes||



## **Minimum output voltage** 

The minimum output voltage that was measured during the total operating time of the power supply. The minimum output voltage is not recorded until the power supply start phase is complete. 

## **Maximum output voltage** 

The maximum output voltage that was measured during the total operating time of the power supply. 

## **Maximum static output current** 

The maximum output current that was measured during the total operating time of the power supply and which is below the static boost (112.5%). The dynamic boost and SFB pulses are not taken into consideration here. The maximum static output current is not recorded until the power supply start phase is complete. 

## **Maximum dynamic output current** 

The maximum output current that was measured during the total operating time of the power supply and which is above the static boost (150%). The SFB pulses are not taken into consideration. The maximum dynamic output current is not recorded until the power supply start phase is complete. 

## **Minimum temperature** 

The minimum temperature that was measured during the total operating time of the power supply. 

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## **Maximum temperature** 

The maximum temperature that was measured during the total operating time of the power supply. 

## **Transient counter** 

Number of transients that were detected on the primary side of the power supply. 

## **Counter for SFB pulses** 

Number of SFB pulses that were detected during the total operating time of the power supply. 

## **Counter for OVP** 

Counts how many times the circuit inside the device for protecting against overvoltages was activated at the output. 

## **Counter for device start** 

Incremented on every device start triggered by the supply voltage being switched on. 

## **Counter for dynamic boost pulses** 

Counts how many times the dynamic boost was triggered during the total operating time of the power supply. 

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## **18.3 Parameter data** 

The parameter data of the power supply can be read and set via R/W access. 

## **Deactivation of events** 

The function of the events described in Section 18.5 is deactivated via index 0x80hex. 

|**Index**|**Sub-**|**Description**|**Value [unit]**|**Default setting**|**Size**|**Acc**|
|---|---|---|---|---|---|---|
||**index**|||||**ess**|
|0x80hex|1|DC not OK|0: Not activated|1: Activated|1 byte|RW|
|128dez|||255: Activated||||
||2|Static power reserve active|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||3|Dynamic power reserve active|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||4|Sustained overload (short circuit) at output|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||5|Warning temperature too high|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||6|No input voltage present|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||7|Input voltage too high|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||8|Input voltage too low|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||9|Voltage limitation at output active (OVP)|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||10|Phase failure|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||11|Preventive maintenance recommended|0: Not activated|1: Activated|1 byte|RW|
|||Remaining service life < service life limit|255: Activated||||
|||(0x83hex, subindex 13)|||||
||12|FUSE MODE or Secure shut-off triggered|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||13|QUINT4-PS internal EEPROM not available|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||14|QUINT4-PS not available|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||15|QUINT4-UPS Replace Battery|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||
||16|QUINT4-UPS Alarm (collective)|0: Not activated|1: Activated|1 byte|RW|
||||255: Activated||||



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## **18.3.1 Configuration of the output data** 

|**Index**|**Sub-**|**Description**|**Value [unit]**|**Default setting**|**Size**|**Acc**|
|---|---|---|---|---|---|---|
||**index**|||||**ess**|
|0x82hex|1|Output voltage|2390 - 2960  [0,01 V]|2410 [24,10 V]|2|RW|
|130dez|||||bytes||
||2|Switch off power|0: Switch on power supply|0: Switch on power|1 byte|RW|
|||supply|255: Switch off power supply|supply|||
||3|Parallel mode|0: Parallel operation inactive|0: Parallel|1 byte|RW|
||||255: Parallel operation active|operation inactive|||
||4|Lock button|0: Keys not locked|0: Keys not locked|1 byte|RW|
||||255: Keys locked||||
||5|Output|Bit 0: SFB Technology|U/I Advanced,|1 byte|RW|
|||characteristic|0: Inactive/1: Active|static and dynamic|||
|||curve|Bit 1: Dynamic boost|boost, and|||
||||0: Inactive/1: Active|SFB Technology|||
||||Bit 2: Static boost|active (0b0001|||
||||0: Inactive/1: Active|0111)|||
||||Bit 3: Reserved||||
||||Bit 4 - 6: Output characteristics||||
||||1: U/I Advanced (0bx001xxxx)||||
||||2: FUSE MODE Current (0bx010xxxx)||||
||||3: Secure shut-off (0bx011xxxx)||||
||||4: Smart HICCUP (0bx100xxxx)||||
||||Bit 7: Reserved||||
||||1) U/I Advanced:||||
||||Without boost: 0b0001 0000||||
||||With static boost: 0b0001 0100||||
||||With static and dynamic boost:||||
||||0b0001 0110||||
||||With static boost, dynamic boost, and SFB:||||
||||0b0001 0111||||
||||2) FUSE MODE Current:||||
||||Without boost: 0b0010 0000||||
||||With static boost: 0b0010 0100||||
||||3) Secure shut-off:||||
||||Without boost: 0b0011 0000||||
||||With static and dynamic boost:||||
||||0b0011 0100||||
||||With static boost, dynamic boost, and SFB:||||
||||0b0011 0111||||
||6|Tripping current|25 - 125 [%]|100 [100 %]|2|RW|
|||FUSE MODE|||bytes||
||7|Tripping time|1 - 1200 [0,01 s]|1 [0.01 s]|2|RW|
|||FUSE MODE|||bytes||
|||and Secure|||||
|||shut-off|||||
||8|Tripping voltage|40 - 90 [%]|75 [75 %]|2|RW|
|||Secure shut-off|||bytes||



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## **Output voltage** 

The output voltage in no-load operation can be set between 23.9 V and 29.6 V. 

## **Parallel operation** 

Power supplies of the same type can be connected in parallel for redundancy and to increase performance. In parallel operation, specify the voltage drop between no-load operation and nominal load as -0.5 V. This ensures optimum current distribution. If parallel operation is not activated, the voltage drop between no-load operation and nominal load is set to -0.1 V by default. 

## **Lock button** 

On the front of the power supply, there are two buttons for manually setting the output voltage. By activating the “Key lock” function, manual adjustment of the output voltage is prevented. 

## **Output characteristic curve** 

You can choose between four characteristic curves: U/I Advanced, Smart HICCUP, FUSE MODE, and Secure shut-off. This allows you to optimally adapt the power supply to the supplied load. Depending on the output characteristic curve that is selected, activate or deactivate the static boost, the dynamic boost, or SFB Technology. Further information on the different output characteristic curves is provided in Section 10. 

## **Tripping current FUSE MODE** 

The “Tripping current FUSE MODE” parameter is used to set the switch-off threshold (IFuse) for the “FUSE MODE” characteristic curve. 

## **Tripping time FUSE MODE and Secure shut-off** 

The “Tripping time FUSE MODE and Secure shut-off” parameter is used to set the switch-off threshold (tFuse) for the “FUSE MODE” and “Secure shut-off” characteristic curves. 

## **Tripping voltage Secure shut-off** 

The “Tripping voltage Secure shut-off” parameter is used to set the switch-off threshold (Ushut-off) for the “Secure shut-off” characteristic curve. 

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## **18.3.2 Configuration of group message for relay contact 13/14** 

Floating relay contact 13/14 can also be used for preventive function monitoring. Different signal dependencies can be configured as required. If more than one signal option is activated, the result is generated by ANDing the individual signals. The various signal options (subindex 1 to 9) are described in Section 15.3. 

|**Index**|**Sub-**|**Description**|**Value [unit]**|**Default setting**|**Size**|**Acc**|
|---|---|---|---|---|---|---|
||**index**|||||**ess**|
|0x83hex|1|Activate output voltage signal|<br>0: Not activated|1: Activated|1 byte|RW|
|131dez||option|255: Activated||||
||2|Activate output power signal|0: Not activated|0: Not activated|1 byte|RW|
|||option|255: Activated||||
||3|Activate operating time|0: Not activated|0: Not activated|1 byte|RW|
|||signal option|255: Activated||||
||4|Activate temperature early|0: Not activated|0: Not activated|1 byte|RW|
|||warning signal option|255: Activated||||
||5|Activate input voltage OK|0: Not activated|0: Not activated|1 byte|RW|
|||signal option|255: Activated||||
||6|Activate output-side voltage|0: Not activated|0: Not activated|1 byte|RW|
|||limitation (OVP) signal option|255: Activated||||
||7|Activate phase monitoring|0: Not activated|0: Not activated|1 byte|RW|
|||signal option|255: Activated||||
||8|Activate service life|0: Not activated|0: Not activated|1 byte|RW|
|||monitoring signal option|255: Activated||||
||9|Phase sequence monitoring|0: Not activated|0: Not activated|1 byte|RW|
|||signal option|255: Activated||||
||10-11|Reserved|||2||
||||||bytes||
||12|Output relay 13/14|0: High active|0: High active|1 byte|RW|
||||255: Low active||||
||13|Threshold output voltage|25 - 135 [%]|90 [90 %]|2|RW|
||||||bytes||
||14|Threshold output power|50 – 200 [%]|100 [100 %]|2|RW|
||||||bytes||
||15|Threshold operating time|0 – 65536 [days]|3650 [3650 days]|2|RW|
||||||bytes||
||16|Threshold Remaining lifetime|0 – 5475 [days]|0 [0 days]|2|RW|
||||||bytes||



## **Output relay 13/14** 

Inversion of relay output 13/14. 

## **Threshold output voltage** 

A relative threshold value can be set to monitor the output voltage. The threshold value for the output voltage can be parameterized in the range from 25% to 135% based on the output voltage currently set. 

The threshold value is used for process input data (index 0x28) as well as for the configuration of the relay contact. 

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## **Threshold output power** 

A relative threshold value can be set to monitor the output power. The threshold value for the output power can be parameterized in the range from 50% to 200% based on the nominal output power. 

The threshold value is used for process input data (index 0x28) as well as for the configuration of the relay contact. 

## **Threshold operating time** 

An absolute threshold value can be set to monitor the operating time. 

The threshold value is used for process input data (index 0x28) as well as for the configuration of the relay contact. 

## **Threshold Remaining lifetime** 

An absolute threshold value can be set to monitor the remaining service life. 

The threshold value is used for process input data (index 0x28) as well as for the configuration of the relay contact. 

## **18.4 Acyclic diagnostic data of the connected QUINT4-UPS** 

If a QUINT4-UPS is connected via the system interface, the following information for the uninterruptible power supply system can also be read. 

|**Index**|**Sub-**<br>**index**<br>**Description**<br>**Value [unit]**<br>**Size**<br>**Acc**<br>**ess**|
|---|---|
|0x1060hex<br>4192dez|1<br>QUINT4-UPS Current alarm<br>4<br>bytes<br>RW|
||2<br>QUINT4-USV SOH<br>[%]<br>2<br>bytes<br>RW|
||3<br>QUINT4-UPS Remaining lifetime<br>[d]<br>2<br>bytes<br>RW|
||4<br>QUINT4-USV SOC<br>[%]<br>2<br>bytes<br>RW|
||5<br>QUINT4-UPS Remaining buffer time<br>[min]|



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## **18.5 Events** 

|**Event**|**Event type**|**Description**|
|---|---|---|
|**codes**|||
|0x1800hex|Warning|DC not OK:|
|||Output voltage < output voltage limit (0x83hex, subindex 10)|
|0x1801hex|Message|Static power reserve active|
|||Output power > output power limit (0x83hex, subindex 11)|
|0x1802hex|Message|Dynamic power reserve active|
|0x1803hex|Warning|Sustained overload (short circuit) at output|
|0x1804hex|Warning|Warning temperature too high|
|0x1805hex|Warning|No input voltage present|
|0x1806hex|Warning|Input voltage too high|
|0x1807hex|Warning|Input voltage too low|
|0x1808hex|Warning|Voltage limitation at output active (OVP)|
|0x1809hex|Warning|Phase failure|
|0x180Ahex|Warning|Preventive maintenance recommended|
|||Remaining service life < service life limit (0x83hex, subindex 13)|
|0x180Bhex|Warning|FUSE MODE or Secure shut-off triggered|
|0x180Chex|Error|QUINT4-PS internal EEPROM not available|
|0x180Dhex|Error|QUINT4-PS no supply voltage at input|
|0x1820hex|Error|QUINT4-UPS Replace Battery|
|0x1821hex|Error|QUINT4-UPS Alarm (collective)|



**PHOENIX CONTACT GmbH & Co. KG • 32823 Blomberg • Germany phoenixcontact.com** 

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## Links

- [View this product on Novapart](https://novapart.co/products/1151047/ac-dc-din-rail-power-supply-psu-24-295-vdc)
- [Request a quote for this part](https://novapart.co/quote/)
- [Supplier page](https://es.farnell.com/phoenix-contact/1151047/power-supply-ac-dc-24v-40a/dp/3976663)
---

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