# Solid State Relay, SPST, 30 A, 660 VAC, DIN Rail, Panel, Screw, Zero Crossing

![Product image](https://novapart.co/image/farnell:4528674/)

**URL**: https://novapart.co/products/RGC1A60CM32KEN/solid-state-relay-spst-30-a-660-vac-din-rail-panel
**SKU**: RGC1A60CM32KEN
**Manufacturer**: CARLO GAVAZZI
**Price**: €275.8900
**Stock**: 10+
**Lead Time**: 50 days (indicative)

## Specifications

| Parameter | Value |
|---|---|
| Svhc | No SVHC (21-Jan-2025) |
| Load Current | 30A |
| Product Range | RGC Series |
| Relay Mounting | DIN Rail, Panel |
| Switching Mode | Zero Crossing |
| Relay Terminals | Screw |
| Control Voltage Max | 32VDC |
| Control Voltage Min | 4VDC |
| Contact Configuration | SPST |
| Operating Voltage Max | 660VAC |
| Operating Voltage Min | 42VAC |

## Datasheet

📄 [Download PDF](https://novapart.co/datasheet/farnell:4528674/)

## **RG..CM..N** 

## **RG..CM..N** 

## **RG 1-phase solid state relays with a communications interface** 

Communication interface for control of solid state relay and real time monitoring 

## **Benefits** 

- **Communications interface.** Reduced wiring and I/O modules. Solid state relay can exchange data with the system controller via this interface. 

- **Reduced maintenance costs and downtime.** Use of real-time data for prevention of machine stoppages during operation. 

- **Good quality products and low scrap rates.** Real-time monitoring allows timely decisions for better machine and process management. 

- **Reduced efforts in troubleshooting.** Distinguished faults to facilitate and reduce troubleshooting time. 

- **Configurable.** The switching mode of the RG..CM..N can be selected to either ON/OFF switching or power control. 

- **Fast installation and set-up.** The solid state relays on the BUS are automatically configured for fast set-up and prevention of incorrect settings. 

**RGC..CM..N** 

**RGS..CM..N** 

- **Compact dimensions.** Slimline RG series for a minimum product width of 17.8 mm, 1x DIN, up to 37 AAC at 40°C. 

## **Description** 

The **RG..N** solid state relays are the switching components in the NRG BUS chain. 

Similar to the RG..D..N, the **RG..CM..N** has integrated monitoring and a communication interface to provide variables and diagnostic information in real-time. The variables that can be read out are current, voltage, frequency, power, energy consumption, load and SSR running hours. The status of each **RG..CM..N** is accessible. Faults are specifically indicated to facilitate troubleshooting. 

With the **RG..CM..N** solid state relays it is additionally possible to control the outputs of the solid state relays via the communication interface. There are two variants, the RGx1A..CM..N is the zero cross relay including various switching modes such as ON/OFF switching, Burst, Distributed full cycle and Advanced Full cycle modes. The RGx1P..CM..N is the proportional control variant which on top of the aforementioned switching modes includes also phase angle switching and soft starting features. 

The **RG..N** cannot interface directly with the system controller (PLC) but needs to be configured in an **NRG BUS chain** (as explained further on). 1 **NRG BUS chain** can handle up to 32 **RG..CM..Ns** . The first **RG..N** in the BUS chain is connected to the NRG controller, whilst the last **RG..N** in the BUS chain has to be terminated with a BUS terminator provided with the NRG controller. 

The **RGC..N** (with integrated heatsink) output ratings go up to 660 VAC, 65 A whilst the **RGS..N** (without heatsink) output ratings go up to 660 VAC, 90 A. Specifications are noted at 25°C unless otherwise specified. 

## **Applications** 

Any heating application where reliable and precise maintenance of temperatures is crucial to the quality of the end product. Typical applications include plastic machinery such as injection machines, extrusion machines and PET blow moulding machines, packaging machinery, sterilisation machinery, drying tunnels and semiconductor manufacturing equipment. 

## **Main function** 

- RGx1A..CM..N: 1 phase, AC zero cross solid state relays up to 660VAC, 90AAC RGx1P..CM..N: 1 phase, AC proportional control solid state relays up to 660VAC, 90AAC 

- RGx1A..CM..N switching modes: ON/OFF, Burst, Distributed full cycle, Advanced full cycle, External control (via a DC control voltage) RGx1P..CM..N switching modes: Phase angle, ON/OFF, Burst, Distributed full cycle and Advanced full cycle. Soft starting and Voltage compensation available with all switching modes 

- Measurements and diagnostics accessible through the communication interface 

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**RG..CM..N** 

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**----- Start of picture text -----**<br>
The NRG system<br>24VDC<br>12 REF signal<br>11 N / L2<br>ne a 14<br>NRG RG..N<br>Controller<br>eS. SBS aso eB oY Be’ Be’ B BUS chain 1<br>PLC or Bus chain 1(Max. 32 RG..Ns)<br>main controller<br>* Max. 48 RG..D..NsMax. 32 RG..CM..Ns<br>A2 -<br>Internal BUS A1 +<br>24VDC<br>Fieldbus ne 11 s 1214 REF signalN / L2<br>or<br>Ethernet<br>eS. SBS Bo eB oY Be’ Be B BUS chain 2<br>Termination Bus chain 1<br>resistor or (Max. 32 RG..Ns)<br>anotherBUS chain *<br>| Fr dl --- idl id} hy A2 -<br>Internal BUS A1 +<br>**----- End of picture text -----**<br>


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12<br>11 ss 11, 12, 14. Applicable only to ‘NRGC’ a A1+, A2-. Required for RG..D..N or external control mode of RG..CM..N *RGN-TERMRES<br>La 14 ——<br>**----- End of picture text -----**<br>


## **System Overview** 

The NRG is a system consisting of one or more BUS chains that enable communication between the field devices (such as the solid state relays) and the control devices (such as the machine controller or PLC). 

Each **NRG BUS** chain consists of the following 3 components: 

- the NRG controller 

- the NRG solid state relay(s) 

- the NRG internal BUS cables 

The **NRG controller** is the interface to the machine controller. It acts as the master of the BUS chain when performing specific actions on the respective BUS chain, and acts as a gateway for the communication between the PLC and the RG..N solid state relays. It is not possible to operate the NRG system without the NRG controller. 

The NRG controllers available are: 

- **NRGC** 

The NRGC is a NRG controller with a Modbus RTU interface over RS485. The NRGC is addressed via the assigned Modbus ID (from 1-247). In a NRG system operating on Modbus it is possible to have 247 NRG BUS chains. 

## **• NRGC-PN** 

- NRGC-PN is a NRG controller with a PROFINET communication interface. The NRGC-PN is identified by a unique MAC address which is printed on the facade of the product. The GSD file can be downloaded from www.gavazziautomation.com 

## **• NRGC-EIP** 

- NRGC-EIP is a NRG controller with an EtherNet/IP communication interface. The IP address is provided automatically 

- via a DHCP server. The EDS file can be downloaded from www.gavazziautomation.com 

## **• NRGC-ECAT** 

- NRGC-ECAT is a NRG controller with an EtherCAT communication interface. The ESI file can be downloaded from www.gavazziautomation.com 

## **• NRGC-MBTCP** 

NRGC-MBTCP is a NRG controller with a Modbus TCP communication interface. 

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**RG..CM..N** 

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## **System Overview (continued)** 

The **NRG solid state relay** is the switching component in the NRG system. Each **RG..N** integrates a communication interface to exchange data with the machine controller (or PLC). The available RG..Ns that can be used in an NRG system are: 

## **• RG..D..N** 

The RG..D..N are solid state relays for use in an NRG system having the communication interface only for real time monitoring. Control of the RG..N is done via a DC control voltage. It is possible to have maximum 48 **RG..D..Ns** in one NRG BUS chain. 

## **• RG..CM..N** 

The RG..CM..N are solid state relays for use in an NRG system having a communication interface for control of the RG..N through the BUS and for real time monitoring. It is possible to have a maximum of 32 RG..CM..N  in one NRG bus chain. There are two variants of the RG..CM..N: 

**RGx1A..CM..N** - the solid state relay with zero cross switching 

**RGx1P..CM..N** - the solid state relay with proportional switching. 

For a review of the features available in both variants refer to the table below: 

**==> picture [484 x 207] intentionally omitted <==**

**----- Start of picture text -----**<br>
Feature  RGx1A..CM..N RGx1P..CM..N<br>External control -<br>ON / OFF switching<br>Burst switching<br>Distributed full cycle switching<br>Advanced full cycle switching<br>-<br>Phase angle<br>Soft start with time mode -<br>Soft start with current limit mode -<br>-<br>Voltage compensation<br>Monitoring of system parameters<br>SSR diagnostics<br>Load diagnostics<br>Overtemperature protection<br>**----- End of picture text -----**<br>


It is not possible to mix RG..D..N and RG..CM..N in the same BUS chain. 

The **NRG internal BUS cables** are proprietary cables that connect the NRG controller to the first RG..N in the NRG BUS chain and respective RG..Ns on the BUS. The internal BUS terminator, provided in the same package with the NRG controller, shall be plugged to the last RG..N in the NRG BUS chain. 

## **NRG system required components** 

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**----- Start of picture text -----**<br>
Description Component code Notes<br>Solid state relays RG..N NRG solid state relays<br>NRG  NRGC.. • NRGC:  NRG controller with Modbus communication.<br>controller • NRGC-PN:  NRG controller with PROFINET communication.<br>• NRGC-EIP:  NRG controller with EtherNet/IP communication.<br>• NRGC-ECAT:  NRG controller with EtherCAT communication.<br>• NRGC-MBTCP:  NRG controller with Modbus TCP communication.<br>1x RGN-TERMRES is included in the NRGC.. packaging. The<br>RGN-TERMRES is to be mounted on the last RG..N on the bus chain.<br>NRG internal BUS  RCRGN-xxx Proprietary cables terminated at both ends with a micro USB connector<br>cables<br>**----- End of picture text -----**<br>


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**RG..CM..N** 

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**List of contents RG..CM..N** References ..................................................................................................................................................................... 5 Structure ......................................................................................................................................................................... 9 Features ........................................................................................................................................................................ 10 General data ................................................................................................................................................................. 10 Performance ................................................................................................................................................................. 10 RGS.. Output ................................................................................................................................................................ 10 RGC.. Output .................................................................................................................................................................11 Inputs (only for RGx1A..CM..N) .................................................................................................................................... 12 Input current vs input voltage (only for RGx1A..CM..N) ................................................................................................ 12 Internal bus ................................................................................................................................................................... 13 Output power dissipation .............................................................................................................................................. 13 RGS.. Heatsink selection .............................................................................................................................................. 14 RGS.. Thermal data ...................................................................................................................................................... 16 RGC.. Current derating ................................................................................................................................................. 17 RGC.. Derating vs spacing ........................................................................................................................................... 17 Compatibility and conformance .................................................................................................................................... 19 Filter connection diagram ............................................................................................................................................. 20 Filtering ......................................................................................................................................................................... 20 Environmental specifications ........................................................................................................................................ 21 Switching modes ........................................................................................................................................................... 22 Measurements .............................................................................................................................................................. 27 LED indicators .............................................................................................................................................................. 27 Alarm management ...................................................................................................................................................... 28 Short circuit protection .................................................................................................................................................. 29 Dimensions ................................................................................................................................................................... 31 Load connection diagram ............................................................................................................................................. 34 BUS connection diagram .............................................................................................................................................. 36 Functional diagram ....................................................................................................................................................... 36 Mounting ....................................................................................................................................................................... 37 Installation ..................................................................................................................................................................... 38 Connection specifications ............................................................................................................................................. 39 **RCRGN** .............................................................................................................................................................................. 41 

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**RG..CM..N** 

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## **References** 

## **Order code** 

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RG   1A60CM   EN<br>Enter the code entering the corresponding option instead of<br>Code Option Description Notes<br>R -<br>G - Solid State Relay (RG)<br>C Version with integrated heatsink<br>S Version without heatsink<br>1 - Number of poles<br>A Switching mode: zero cross<br>P Switching mode: proportional<br>60 - Rated voltage: 600 VAC (42-660 VAC) 50/60 Hz<br>CM - Control through the communication interface (ON/OFF or power  External control only applicable<br>control) for RGx1A..CM..N<br>25 Rated current - 25 AAC For RGC..only<br>For RGC.. only.<br>32 Rated current - 30 AAC, 37 AAC Max. 30 AAC for RGC..KEN,<br>max. 37 AAC for RGC..GEN<br>42 Rated current - 43 AAC For RGC..only<br>62 Rated current - 65 AAC For RGC..only<br>50 Rated current - 50 AAC For RGS..only<br>92 Rated current - 90 AAC For RGS..only<br>K Screw connection for power terminals<br>G Box clamp connection for power terminals<br>E - Connection configuration<br>N - For integration in an NRG system<br>HT Pre- attached thermal pad for RGS Option<br>**----- End of picture text -----**<br>


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**RG..CM..N** 

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## **Selection guide - versions with integrated heatsink (RGC)** 

||||**Rated operational current @ 40°C**|**Rated operational current @ 40°C**|**Rated operational current @ 40°C**|**Rated operational current @ 40°C**|**Rated operational current @ 40°C**|
|---|---|---|---|---|---|---|---|
|**Rated**<br>**voltage**|**Switch-**<br>**ing**|**Connec-**<br>**tion**<br>**power**|**25 AAC**|**30 AAC**|**37 AAC**|**43 AAC**|**65 AAC**|
||||**Product width**|||||
||||**17.8 mm**|**17.8 mm**|**17.8 mm**|**35 mm**|**70 mm**|
|**600**<br>**VACrms**|zero cross|Screw|RGC1A60CM25KEN|RGC1A60CM32KEN|-|-|-|
|||Box clamp|-|-|RGC1A60CM32GEN|RGC1A60CM42GEN|RGC1A60CM62GEN|
||proportional|Screw|RGC1P60CM25KEN|RGC1P60CM32KEN|-|-|-|
|||Box clamp|-|-|RGC1P60CM32GEN|RGC1P60CM42GEN|RGC1P60CM62GEN|



## **Selection guide - versions without heatsink (RGS)** 

||||**Maximum rated operational current**|**Maximum rated operational current**|**Maximum rated operational current**|**Maximum rated operational current**|**Maximum rated operational current**|
|---|---|---|---|---|---|---|---|
|**Rated**|**Sihi**|**Connection**|**50 AAC**|**90 AAC**|**-**|**-**|**-**|
|**voltage**|**wtcng**|**power**|**Product width**|||||
||||**17.8 mm**|**17.8 mm**|**-**|**-**|**-**|
|**600**<br>**VACrms**|zero cross|Screw|RGS1A60CM50KEN|RGS1A60CM92KEN|-|-|-|
|||Box clamp|-|RGS1A60CM92GEN|-|-|-|
||proportional|Screw|RGS1P60CM50KEN|RGS1P60CM92KEN|-|-|-|
|||Box clamp|-|RGS1P60CM92GEN|-|-|-|



## **Selection guide - versions with attached thermal pad (RGS..HT)** 

||||**Maximum rated operational current**|**Maximum rated operational current**|**Maximum rated operational current**|**Maximum rated operational current**|**Maximum rated operational current**|
|---|---|---|---|---|---|---|---|
|**Rated**|**Sihi**|**Connection**|**50 AAC**|**90 AAC**|**-**|**-**|**-**|
|**voltage**|**wtcng**|**power**|**Product width**|||||
||||**17.8 mm**|**17.8 mm**|**-**|**-**|**-**|
|**600**<br>**VACrms**|zero cross|Screw|RGS1A60CM50KENHT|RGS1A60CM92KENHT|-|-|-|
|||Box clamp|-|RGS1A60CM92GENHT|-|-|-|
||proportional|Screw|RGS1P60CM50KENHT|RGS1P60CM92KENHT|-|-|-|
|||Box clamp|-|RGS1P60CM92GENHT|-|-|-|



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**RG..CM..N** 

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## **Carlo Gavazzi compatible components** 

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**----- Start of picture text -----**<br>
Description Component code Notes<br>NRG  NRGC.. • NRGC:  NRG controller with Modbus communication.<br>controller • NRGC-PN:  NRG controller with PROFINET communication.<br>• NRGC-EIP:  NRG controller with EtherNet/IP communication.<br>• NRGC-ECAT:  NRG controller with EtherCAT communication.<br>• NRGC-MBTCP:  NRG controller with Modbus TCP communication.<br>1x RGN-TERMRES is included in the NRGC.. packaging. The<br>RGN-TERMRES is to be mounted on the last RG..N on the bus chain.<br>NRG Internal BUS  RCRGN-010-2 10cm cable terminated at both ends with a microUSB connector.<br>cables Packed x4 pcs.<br>RCRGN-025-2 25cm cable terminated at both ends with a microUSB connector.<br>Packed x1 pc.<br>RCRGN-075-2 75cm cable terminated at both ends with a microUSB connector.<br>Packed x1 pc.<br>RCRGN-150-2 150cm cable terminated at both ends with a microUSB connector.<br>Packed x1 pc.<br>RCRGN-350-2 350cm cable terminated at both ends with a microUSB connector.<br>Packed x1 pc.<br>RCRGN-500-2 500cm cable terminated at both ends with a microUSB connector.<br>Packed x1 pc.<br>Termination resistor RGN-TERMRES Internal BUS chain terminator. 1 pc. is included in the NRGC.. packaging<br>Plugs RGMREF Spring plug labelled 'Ref'. Packed x10 pcs.<br>1 pc. included in the RG..N packaging<br>RGM25 Spring plug labelled 'A1 A2'. Packed x10 pcs.<br>(not applicable for RGx1P..CM..N)<br>Heatsinks RHS… Heatsinks for RGS models<br>Thermal pads RGHT Thermal pad mounted on RGS<br>Pack of 10 thermal pads size 34.6 x 14mm<br>**----- End of picture text -----**<br>


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**RG..CM..N** 

|**Information**<br>~~RR~~|**Where to find it**||
|---|---|---|
|NRG ModbusRTU<br>user manual<br>~~RR~~<br>~~|~~|**Where to find it**<br>https://gavazziautomation.com/images/PIM/MANUALS/ENG/SSR_UM_NRG.pdf<br>~~|~~|Ora<br>~~|~~|
|NRG PROFINET<br>user manual<br>~~|~~<br>~~a~~|https://gavazziautomation.com/images/PIM/MANUALS/ENG/SSR_UM_NRG_PN.pdf<br>~~|~~<br>~~a~~|~~|~~<br>gal<br>~~a~~|
|NRG EtherNet/IP<br>user manual<br>~~a~~<br>~~BS~~<br>~~ee~~|https://gavazziautomation.com/images/PIM/MANUALS/ENG/SSR_UM_NRG_EIP.pdf<br>~~a~~<br>~~BS~~<br>~~ee~~|~~a~~<br>Cra<br>~~BS~~<br>~~ora~~|
|NRG EtherCAT<br>user manual<br>~~ee~~|https://gavazziautomation.com/images/PIM/MANUALS/ENG/SSR_UM_NRG_ECAT.pdf<br>~~ee~~|~~ora~~|
|NRG Modbus TCP<br>user manual<br>~~ee~~<br>~~a~~|https://gavazziautomation.com/images/PIM/MANUALS/ENG/SSR_UM_NRG_MBTCP.pdf<br>~~ee~~<br>~~a~~|~~ora~~<br>Bigs<br>~~a~~|
|Datasheet<br>NRG Controller<br>with Modbus RTU<br>~~a~~<br>~~a~~|https://gavazziautomation.com/images/PIM/DATASHEET/ENG/SSR_NRGC.pdf<br>~~a~~<br>~~a~~|~~a~~<br>mg<br>~~a~~|
|Datasheet<br>NRG Controller<br>with PROFINET<br>~~ee~~<br>~~ee~~|https://gavazziautomation.com/images/PIM/DATASHEET/ENG/SSR_NRGC_PN.pdf<br>~~ee~~<br>~~ee~~|~~ee~~<br>~~maga~~|
|Datasheet<br>NRG Controller<br>with EtherNet/IP<br>~~ee~~<br>~~ee~~|https://gavazziautomation.com/images/PIM/DATASHEET/ENG/SSR_NRGC_EIP.pdf<br>~~ee~~|~~maga~~<br>~~Bigs~~|
|Datasheet<br>NRG Controller<br>with EtherCAT<br>~~ee~~<br>~~ee~~|https://gavazziautomation.com/images/PIM/DATASHEET/ENG/SSR_NRGC_ECAT.pdf<br>~~ee~~|~~maga~~<br>~~Bigs~~|
|Datasheet<br>NRG Controller<br>with Modbus TCP<br>~~ee~~<br>~~a~~|https://gavazziautomation.com/images/PIM/DATASHEET/ENG/SSR_NRGC_MBTCP.pdf<br>~~a~~|~~Bigs~~<br>mach<br>~~a~~|
|Datasheet<br>RG..D..N solid<br>state relay with<br>only real-time<br>monitoringvia bus<br>~~ee~~|https://gavazziautomation.com/images/PIM/DATASHEET/ENG/SSR_RG_D_N.pdf<br>~~ee~~|lisa<br>~~ee~~|
|Online heatsink<br>selector tool for<br>RGS..N|http://gavazziautomation.com/nsc/HQ/EN/solid_state_relays||



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## **RG..CM..N** 

## **Structure** 

## **RGC..CM..N** 

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**----- Start of picture text -----**<br>
Micro-USB<br>Heatsink*<br>1/L1<br>Ref LED A1, A2**<br>LED<br>LED<br>2/T1<br>Sa<br>i a<br>A1, A2**<br>ee<br>**----- End of picture text -----**<br>


- integrated for RGC..N versions. RGS..N do not have an integrated heatsink 

- ** optional for RGx1A..CM..N and not applicable for RGx1P..CM..N 

|**Element**|**Component**|**Function**|
|---|---|---|
|**1/L1**|Power connection|Mains connection|
|**2/T1**|Power connection|Load connection|
|**Ref**|Voltage reference<br>connection|Reference signal (L2 or N) for voltage measurement<br>2-pole plug internally shorted to allow for looping|
|**A1, A2**|Control connection<br>(optional)|Terminal for control voltage in case of external control. RGM25 plug is<br>required (not applicable for RGx1P..CM..N)|
|**Green LED**|LOAD indicator|Indicates status of RG..N output|
|**Yellow LED**|BUS indicator|Indicates ongoing communication|
|**Red LED**|ALARM indicator|Indicates presence of an alarm condition|
|**Micro-USB**|Micro-USB ports for<br>internal BUS|Interface for RCRGN cable connection for the internal BUS<br>communications line|
|**Heatsink**|Integrated heatsink|Integrated for RGC..N versions<br>RGS..N versions do not have an integrated heatsink|



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**RG..CM..N** 

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## **Features** 

## **General data** 

|**Material**|PA66 or PA6 (UL94 V0), RAL7035<br>850°C, 750°C/2s accordingto GWIT and GWFI requirements of EN 60335-1|
|---|---|
|**Mounting**|DIN rail(for RGC only)orpanel|
|**Touch Protection**|IP20|
|**Overvoltage Category**|III, 6kV(1.2/50μs)rated impulse withstand voltage|
|**Isolation**|Input to Output: 2500 Vrms<br>Input and Output to heatsink: 4000 Vrms|
|**Weight**|RGS..50:  approx. 170 g<br>RGS..92:  approx. 170 g<br>RGC..25:  approx. 310 g<br>RGC..32:  approx. 310 g<br>RGC..42:  approx. 520 g<br>RGC..62:  approx. 1030g|
|**Compatibility**|NRGC (NRG controller with Modbus RS485 interface)<br>NRGC-PN (NRG controller with PROFINET interface)<br>NRGC-EIP (NRG controller with EtherNet/IP interface)<br>NRGC-ECAT (NRG Controller with EtherCAT interface)<br>NRGC-MBTCP (NRG Controller with Modbus TCP interface)|



## **Performance** 

## **RGS.. Output** 

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**----- Start of picture text -----**<br>
RGS..50.. RGS..92..<br>Operational voltage range, Ue 42 – 660 VAC<br>RGS1A.. : zero cross switching<br>Switching mode<br>RGS1P.. : proportional switching<br>Max. operational current: AC-51 rating [1] 50 AAC 90 AAC<br>Max. operational current: AC-55b rating [2] 50 AAC 90 AAC<br>Operational frequency range 50/60 Hz<br>Blocking voltage 1200 Vp<br>Power factor > 0.9<br>Output overvoltage protection Integrated varistor across L1-T1<br>Leakage current @ rated voltage < 5 mAAC<br>300 mAAC 500 mAAC<br>Minimum operational current<br>1 AAC (Phase Angle) 1 AAC (Phase Angle)<br>Maximum transient surge current (ITSM),  600 Ap 1900 Ap<br>t=10 ms<br>I²t for fusing (t=10ms), minimum 1800 A²s 18000 A²s<br>LED indication - LOAD Green, ON when ouput is ON<br>Critical dV/dt (@Tj init = 40°C) 1000 V/μs<br>Transfer characteristics  Linear with output power<br>**----- End of picture text -----**<br>


1. Max. rated current with suitable heatsink. Refer to RGS heatsink selection tables. 

2. For this category use soft start with time or soft start with current limit to limit inrush current for infrared heaters. 

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**RG..CM..N** 

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## **RGC.. Output** 

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**----- Start of picture text -----**<br>
RGC..25 RGC..32 RGC..42 RGC..62<br>Operational voltage range, Ue 42 - 660 VAC<br>RGC1A.. : zero cross switching<br>Switching mode<br>RGC1P.. : proportional switching<br>Max. operational 30 AAC KEN<br>30 AAC 50 AAC 75 AAC<br>current: AC-51 rating @ 25°C [3] 43 AAC GEN<br>Max. operational  30 AAC KEN<br>25 AAC 43 AAC 65 AAC<br>current: AC-51 rating @ 40°C [3] 37 AAC GEN<br>Max. operational  30 AAC KEN<br>25 AAC 43 AAC 65 AAC<br>current: AC-55b rating @ 40°C [4] 37 AAC GEN<br>Operational frequency range 50/60 Hz<br>Blocking voltage 1200 Vp<br>Power factor > 0.9<br>Output overvoltage protection Integrated varistor across L1-T1<br>Leakage current @ rated voltage < 5 mAAC<br>300 mAAC  500 mAAC<br>Minimum operational current<br>1 AAC (Phase Angle) 1 AAC (Phase Angle)<br>Maximum transient surge current<br>600 Ap 1900 Ap 1900 Ap 1900 Ap<br>(ITSM), t=10 ms<br>I²t for fusing (t=10ms), minimum 1800 A²s 18000 A [2] s 18000 A²s 18000 A²s<br>LED indication - LOAD Green, ON when output is ON<br>Critical dV/dt (@Tj init = 40°C) 1000 V/μs<br>Transfer characteristics  Linear with output power<br>**----- End of picture text -----**<br>


3. Refer to RGC current derating curves for current ratings at different surrounding temperatures. 

4. For this category use soft start with time or soft start with current limit to limit inrush current for infrared heaters. 

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**RG..CM..N** 

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## **Inputs (only for RGx1A..CM..N)** 

|**Control voltage range, Uc: A1, A2**|4-32 VDC|
|---|---|
|**Pick-up voltage**|3.8 VDC|
|**Drop-out voltage**|1 VDC|
|**Maximum reverse voltage**|32 VDC|
|**Maximum response time pick-up**|½ cycle|
|**Response time drop-out**|½ cycle|
|**Input current @ 40oC**|See diagram below|



- Note 1: Switching of A2 (-) is not possible, only A1 (+) can be switched. 

- Note 2: Control voltage via A1, A2 is only required for external control switching mode. For further information on other switching modes refer to 'Switching Modes' section. 

## **Input current vs input voltage (only for RGx1A..CM..N)** 

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**----- Start of picture text -----**<br>
14mA<br>13mA<br>12mA<br>11mA<br>10mA<br>9mA<br>8mA<br>7mA<br>6mA<br>4VDC 8VDC 12VDC 16VDC 20VDC 24VDC 28VDC 32VDC<br>**----- End of picture text -----**<br>


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## **Internal bus** 

|**Supply voltage**|Supplied through 2 wires of the RCRGN bus cable when connected to a powered<br>NRG controller|
|---|---|
|**BUS termination**|**RGN-TERMRES**on last device in the bus chain|
|**Max. no. of RG..Ns in a bus chain**|32|
|**LED indication - BUS**|Yellow, ON duringongoingcommunication|
|**ID for RG..Ns**|Automatic through Autoconfguring (Modbus), Auto-addressing (ethernet<br>protocols), (refer to respective User Manuals for further details).<br>Communication is only possible with RG..Ns that are confgured correctly, i.e.,<br>theyhave a valid ID.|



## **Output power dissipation** 

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**----- Start of picture text -----**<br>
RGS..<br>100<br>90<br>80<br>70<br>60<br>50<br>RGS..50<br>40 RGS..92<br>30<br>20<br>10<br>0<br>0 5 10 15 20 25 30 35 40 45 50 55 60 65 70 75 80 85 90<br>Load current in AAC<br>RGC.. 70<br>60<br>50<br>40<br>RGC..25<br>30<br>RGC..32, 42, 62<br>20<br>10<br>0<br>0 5 10 15 20 25 30 35 40 45 50 55 60 65<br>Load Current in AAC<br>Power dissipation in W<br>Power Dissipation in W<br>**----- End of picture text -----**<br>


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## **RGS.. Heatsink selection** 

Note: The heatsink selection in tables below is valid only when a fine layer of silicon based thermal paste (with a similar thermal resistance to that specified for Rthcs in the Thermal data section) is utilised. The SSR will overheat if this heatsink selection is used for heatsink assemblies using a thermal interface material having a higher Rthcs than indicated in the Thermal data section. 

Thermal resistance [°C/W] of RGS..50 

**==> picture [483 x 176] intentionally omitted <==**

**----- Start of picture text -----**<br>
Surrounding ambient temperature  [°C]<br>Load current per pole AC-51 [A] 20 30 40 50 60 65<br>50 1.45 1.28 1.06 0.87 0.68 0.59<br>45 1.72 1.50 1.29 1.07 0.85 0.75<br>40 2.00 1.75 1.50 1.25 1.00 0.87<br>35 2.35 2.06 1.76 1.47 1.18 1.03<br>30 2.83 2.48 2.13 1.77 1.42 1.24<br>25 3.52 3.08 2.64 2.20 1.76 1.54<br>20 4.58 4.01 3.44 2.86 2.29 2.01<br>15 6.40 5.60 4.80 4.00 3.20 2.80<br>10 10.19 8.92 7.64 6.37 5.10 4.46<br>5 -- 19.51 16.72 13.94 11.15 9.76<br>**----- End of picture text -----**<br>


Thermal resistance [°C/W] of RGS..92 

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**----- Start of picture text -----**<br>
Surrounding ambient temperature  [°C]<br>Load current per pole AC-51 [A] 20 30 40 50 60 65<br>90 0.62 0.52 0.41 0.31 0.21 0.16<br>81 0.77 0.66 0.54 0.42 0.31 0.25<br>72 0.97 0.83 0.70 0.56 0.43 0.36<br>63 1.23 1.07 0.91 0.75 0.59 0.51<br>54 1.55 1.35 1.16 0.97 0.77 0.68<br>45 1.93 1.69 1.45 1.21 0.97 0.85<br>36 2.53 2.21 1.89 1.58 1.26 1.11<br>27 3.55 3.11 2.66 2.22 1.77 1.55<br>18 5.67 4.97 4.26 3.55 2.84 2.48<br>9 12.46 10.90 9.34 7.79 6.23 5.45<br>**----- End of picture text -----**<br>


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## **RGS..HT Heatsink selection for variants with pre-attached thermal pad** 

Note: The heatsink selection in tables below is valid for the models having a pre-attached thermal interface (RGS..HT). The thermal resistance Rthcs_HT of the interface used is noted in the Thermal data section (ref. RGHT). In case of replacements, a thermal interface pad having the same or lower thermal resistance shall be utilised to prevent SSR from overheating. 

Thermal resistance [°C/W] of RGS..50..HT 

**==> picture [483 x 176] intentionally omitted <==**

**----- Start of picture text -----**<br>
Surrounding ambient temperature  [°C]<br>Load current per pole AC-51 [A] 20 30 40 50 60 65<br>50 0.84 0.65 0.46 0.27 0.08 --<br>45 1.12 0.90 0.69 0.47 0.25 0.15<br>40 1.47 1.22 0.97 0.72 0.47 0.35<br>35 1.94 1.64 1.35 1.06 0.76 0.62<br>30 2.57 2.22 1.86 1.51 1.15 0.98<br>25 3.48 3.03 2.59 2.15 1.71 1.49<br>20 4.58 4.01 3.44 2.86 2.29 2.01<br>15 6.40 5.60 4.80 4.00 3.20 2.80<br>10 10.19 8.92 7.64 6.37 5.10 4.46<br>5 -- 19.51 16.72 13.94 11.15 9.76<br>**----- End of picture text -----**<br>


Thermal resistance [°C/W] of RGS..92..HT 

**==> picture [483 x 176] intentionally omitted <==**

**----- Start of picture text -----**<br>
Surrounding ambient temperature  [°C]<br>Load current per pole AC-51 [A] 20 30 40 50 60 65<br>90 0.07 -- -- -- -- --<br>81 0.22 0.11 -- -- -- --<br>72 0.42 0.28 0.15 0.01 -- --<br>63 0.68 0.52 0.35 0.20 0.04 --<br>54 1.03 0.84 0.65 0.45 0.26 0.16<br>45 1.54 1.30 1.05 0.81 0.57 0.45<br>36 2.32 2.00 1.69 1.37 1.05 0.90<br>27 3.55 3.11 2.66 2.22 1.77 1.55<br>18 5.67 4.97 4.26 3.55 2.84 2.48<br>9 12.46 10.90 9.34 7.79 6.23 5.45<br>**----- End of picture text -----**<br>


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**----- Start of picture text -----**<br>
RGS.. Thermal data<br>RGS..50 RGS..92<br>Max. junction temperature 125°C<br>Heatsink temperature 100°C<br>Junction to case thermal<br>< 0.30°C/W < 0.20°C/W<br>resistance, Rthjc<br>Case to heatsink thermal<br>resistance, Rthcs5 < 0.25°C/W<br>Case to heatsink thermal<br>resistance (RGS..HT), Rthcs_HT6 < 0.85 ˚C/W < 0.80 ˚C/W<br>**----- End of picture text -----**<br>


5. Thermal resistance case to heatsink values are applicable upon application of a fine layer of silicon based thermal paste HTS02S from Electrolube between SSR and heatsink. 

6. Thermal resistance case to heatsink values for RGS..HT are applicable for the RGHT thermal pad that is pre-attached from the factory to the RGS. 

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## **RGC.. Current derating** 

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**----- Start of picture text -----**<br>
90<br>80<br>70<br>60<br>RGC..62<br>50 RGC..42<br>RGC..32GEN<br>40<br>RGC..32KEN<br>30 RGC..25<br>20<br>10<br>0<br>0 5 10 15 20 25 30 35 40 45 50 55 60 65<br>Surrounding ambient temperature in °C<br>Load current in AAC<br>**----- End of picture text -----**<br>


## **RGC.. Derating vs spacing** 

**==> picture [483 x 204] intentionally omitted <==**

**----- Start of picture text -----**<br>
RGC...25<br>35<br>30<br>22.5mm & over<br>25<br>10mm<br>20 5mm<br>0mm<br>15<br>10<br>5<br>0<br>0 5 10 15 20 25 30 35 40 45 50 55 60 65<br>Surrounding ambient temperature in °CSurrounding ambient temperature in °C<br>Load current in AAC<br>Load current in AAC<br>**----- End of picture text -----**<br>


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## **RG..CM..N** 

**==> picture [40 x 40] intentionally omitted <==**

**RGC...32** 

**==> picture [386 x 162] intentionally omitted <==**

**----- Start of picture text -----**<br>
40<br>35<br>30<br>25<br>Stand alone unit<br>20 20mm & over<br>5mm<br>15<br>0mm<br>10<br>5<br>0<br>0 5 10 15 20 25 30 35 40 45 50 55 60 65<br>Surrounding ambient temperature in °C<br>Load current in AAC<br>**----- End of picture text -----**<br>


## **RGC...42** 

## **RGC...62** 

**==> picture [419 x 177] intentionally omitted <==**

**----- Start of picture text -----**<br>
60<br>50<br>22.5mm & over<br>40<br>0mm<br>30<br>20<br>10<br>0<br>0 5 10 15 20 25 30 35 40 45 50 55 60 65<br>Surrounding ambient temperature in °CSurrounding ambient temperature in °C<br>Load current in AAC<br>Load current in AAC<br>**----- End of picture text -----**<br>


**==> picture [388 x 179] intentionally omitted <==**

**----- Start of picture text -----**<br>
75<br>70<br>65<br>60<br>55 Stand alone unit<br>50<br>10mm & over<br>45<br>0mm<br>40<br>35<br>30<br>0 5 10 15 20 25 30 35 40 45 50 55 60 65<br>Surrounding ambient temperature in °CSurrounding ambient temperature in °C<br>Load current in AAC<br>Load current in AAC<br>**----- End of picture text -----**<br>


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## **RG..CM..N** 

## **Compatibility and conformance** 

RGC: **Approvals** RGS: C€ cAdss EA cs ~~Oo C€'@ Hil es~~ **RGC: RGS:** LVD: EN 60947-4-3 LVD: EN 60947-4-3 EMCD: EN 60947-4-3 EMCD: EN 60947-4-3 **Standards compliance** EE: EN 60947-4-3 EE: EN 60947-4-3 EMC: EN 60947-4-3 EMC: EN 60947-4-3 UL: UL508 (E172877), NMFT UR: cUL: C22.2 No. 14 (E172877), NMFT7 cUR: CCC: GB/T 14048-5 (IEC 60947-5-1) CCC: **UL short circuit current rating** 100k Arms (refer to short circuit protection section, Type 1 – UL508) ~~a~~ 

RGC: RGS: C€ cAdss EA cs ~~C€'@ Hil es~~ **RGC: RGS:** LVD: EN 60947-4-3 LVD: EN 60947-4-3 EMCD: EN 60947-4-3 EMCD: EN 60947-4-3 EE: EN 60947-4-3 EE: EN 60947-4-3 EMC: EN 60947-4-3 EMC: EN 60947-4-3 UL: UL508 (E172877), NMFT UR: UL508 Recognised (E172877), NMFT2 cUL: C22.2 No. 14 (E172877), NMFT7 cUR: C22.2 No. 14 (E172877), NMFT8 CCC: GB/T 14048-5 (IEC 60947-5-1) CCC: GB/T 14048-5 (IEC 60947-5-1) 

|**Electromagnetic compatibility (EMC) - Immunity**|**Electromagnetic compatibility (EMC) - Immunity**|
|---|---|
|**Electrostatic discharge (ESD)**|EN/IEC 61000-4-2<br>8 kV air discharge, 4 kV contact(PC1)|
|**Radiated radio frequency7**|EN/IEC 61000-4-3<br>10 V/m, from 80 MHz to 1 GHz (PC1)<br>10 V/m, from 1.4 to 2 GHz (PC1)<br>3 V/m,from 2 to 2.7 GHz(PC1)|
|**Electrical fast transient (burst)**|EN/IEC 61000-4-4<br>Output: 2 kV, 5 kHz & 100 kHz (PC1)<br>Input,BUS: 1 kV,5 kHz & 100 kHz(PC1)|
|**Conducted radio frequency7**|EN/IEC 61000-4-6<br>10 V/m, from 0.15 to 80 MHz(PC1)|
|**Electrical surge**|EN/IEC 61000-4-5<br>Output, line to line: 1 kV (PC2)<br>Output, line to earth: 2 kV (PC2)<br>BUS (Supply), line to line: 500 V (PC2)<br>BUS (Supply), line to earth: 500 V (PC2)<br>BUS(Data), A1-A2, line to earth: 1 kV(PC2)8|
|**Voltage dips**|EN/IEC 61000-4-11<br>0% for 0.5, 1 cycle (PC2)<br>40% for 10 cycles (PC2)<br>70% for 25 cycles (PC2)<br>80% for 250 cycles(PC2)|
|**Voltage interruptions**|EN/IEC 61000-4-11<br>0% for 5000ms(PC2)|



7. Under the influence of RF, a reading error of ± 10% was allowed for load currents > 500 mA and ± 20% for load currents < 500 mA. These tolerances are not maintained if Ref signal is not connected. 

8. Not applicable to shielded cables < 10 m. Additional suppression on data lines may be required if shielded cables are not used. 

**Electromagnetic compatibility (EMC) - Emissions Radio interference field emis-** EN/IEC 55011 **sion (radiated)** Class A: from 30 to 1000 MHz EN/IEC 55011 **Radio interference voltage** Class A: from 0.15 to 30 MHz **emissions (conducted)** (External filter may be required - refer to Filtering section) 

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## **Filter connection diagram** 

**==> picture [357 x 133] intentionally omitted <==**

**----- Start of picture text -----**<br>
L T<br>Phase<br>SSR<br>Phase / Neutral LOAD<br>**----- End of picture text -----**<br>


## **Filtering** 

**==> picture [483 x 192] intentionally omitted <==**

**----- Start of picture text -----**<br>
Suggested filter for EN 55011 Class A compliance Maximum heater<br>current [AAC]<br>Part number<br>Other switching<br>ON / OFF Phase angle - RGx1P..N only<br>modes<br>SCHAFFNER, FN2410-45-33<br>RGS..50 220 nF / 760 V / X1 3.3 uF / 760 V / X1 30 A<br>EPCOS, SIFI -H-G136<br>SCHAFFNER, FN2410-60-34<br>RGS..92 680 nF / 760 V / X1 SCHAFFNER, FN2410-60-34 60 A<br>EPCOS, A60R000<br>SCHAFFNER, FN2410-45-33<br>RGS..25 220 nF / 760 V / X1 3.3 uF / 760 V / X1 30 A<br>EPCOS, SIFI -H-G136<br>SCHAFFNER, FN2410-45-33<br>EPCOS, A50R000<br>RGC..32 330 nF / 760 V / X1 3.3 uF / 760 V / X1 35 A<br>EPCOS, A42R122<br>EPCOS, SIFI-H-G136<br>SCHAFFNER, FN2410-45-33<br>RGC..42 330 nF / 760 V / X1 EPCOS, A50R000 3.3 uF / 760 V / X1 43 A<br>EPCOS A42R122<br>**----- End of picture text -----**<br>


Note: 

- Control input lines must be installed together to maintain products’ susceptability to Radio Frequency interference. 

- Use of AC solid state relays may, according to the application and the load current, cause conducted radio interferences. Use of mains filters may be necessary for cases where the user must meet E.M.C requirements. The capacitor values given inside the filtering specification tables should be taken only as indications, the filter attenuation will depend on the final application. 

- Performance Criteria 1 (PC1): No degradation of performance or loss of function is allowed when the product is operated as intended. 

- Performance Criteria 2 (PC2): During the test, degradation of performance or partial loss of function is allowed. However when the test is complete the product should return operating as intended by itself. 

- Performance Criteria 3 (PC3): Temporary loss of function is allowed, provided the function can be restored by manual operation of the controls. 

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## **Environmental specifications** 

|**Operating temperature**|-20 to +65 °C(-4 to +149 °F)|
|---|---|
|**Storage temperature**|-20 to +65 °C(-4 to +149 °F)|
|**Relative humidity**|95% non-condensing @40°C|
|**Pollution degree**|2|
|**Installation altitude**|0-1000m  Above 1000 m derate linearly by 1% of FLC per 100m up to a maximum<br>of 2000 m|
|**Vibration resistance**|2g/ axis(2-100Hz, IEC60068-2-6, EN 50155)|
|**Impact resistance**|15/11g/ms(EN 50155)|
|**EU RoHS compliant**|Yes|
|**China RoHS**|25|



The declaration in this section is prepared in compliance with People’s Republic of China Electronic Industry Standard SJ/ T11364-2014: Marking for the Restricted Use of Hazardous Substances in Electronic and Electrical Products. 

||**Toxic or Harardous Substances and Elements**|**Toxic or Harardous Substances and Elements**|**Toxic or Harardous Substances and Elements**|**Toxic or Harardous Substances and Elements**|**Toxic or Harardous Substances and Elements**|**Toxic or Harardous Substances and Elements**|
|---|---|---|---|---|---|---|
|**Part Name**|Lead<br>(Pb)|Mercury<br>(Hg)|Cadmium<br>(Cd)|Hexavalent<br>Chromium<br>(Cr(Vl))|Polybrominat-<br>ed biphenyls<br>(PBB)|Polybromi-<br>nated diphenyl<br>ethers (PBDE)|
|**Power Unit**<br>**Assembly**|x|O|O|O|O|O|
|O: Indicates that said hazardous substance contained in homogeneous materials for this part are below the limit<br>requirement of GB/T 26572.<br>X: Indicates that said hazardous substance contained in one of the homogeneous materials used for this part is above<br>the limit requirement of GB/T 26572.|||||||



## 这份申明根据中华人民共和国电子工业标准 SJ/T11364-2014：标注在电子电气产品中限定使用的有害物质 

|零件名称|有毒或有害物质与元素|有毒或有害物质与元素|有毒或有害物质与元素|有毒或有害物质与元素|有毒或有害物质与元素|有毒或有害物质与元素|
|---|---|---|---|---|---|---|
||铅<br>(Pb)|汞<br>(Hg)|镉<br>(Cd)|六价铬<br>(Cr(Vl))|多溴化联苯<br>(PBB)|多溴联苯醚<br>(PBDE)|
|功率单元|x|O|O|O|O|O|
|O:此零件所有材料中含有的该有害物低于GB/T 26572的限定。<br>X: 此零件某种材料中含有的该有害物高于GB/T 26572的限定。|||||||



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## **Switching modes** 

## **ON-OFF Mode** 

The ON-OFF mode controls the solid state relays at the user's command. All the RG..Ns on the bus chain can be controlled at the same time. 

The advantages of this mode are: 

- It is effectively a direct replacement of the A1-A2, i.e. for existing systems, the control algorithm within the PLC can be left relatively untouched and the output is redirected via the communication interface instead of the PLC output modules. 

- One command can set the state of the whole bus chain. 

## **Burst Firing Mode** 

The Burst firing mode works with a control level and a time-base which can be varied by user from 0.1 seconds to 10 seconds. The percentage ON time is then determined by the control level. Therefore, with a control level of 10% ;10% of the time-base will be ON and 90% will be OFF. The figure below shows example waveforms of this firing mode at different control levels. In this example the time base was set to 1 second. The percentage control resolution depends on the timebase set by the user. To achieve a 1% resolution, the time base has to be a minimum of 2 sec for 50 Hz and 1.7 sec for 60 Hz. 

Output with Burst firing mode @ 33% control level: 

**==> picture [428 x 137] intentionally omitted <==**

**----- Start of picture text -----**<br>
0.0 0.2 0.4 0.6 0.8 1.0<br>Output with Burst firing mode @ 50% control level:<br>0.0 0.2 0.4 0.6 0.8 1.0<br>**----- End of picture text -----**<br>


Output with Burst firing mode @ 50% control level: 

Output with Burst firing mode @ 66% control level: 

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**----- Start of picture text -----**<br>
0.0 0.2 0.4 0.6 0.8 1.0<br>**----- End of picture text -----**<br>


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## **Switching modes (Continued)** 

## **Distributed Firing Mode** 

The Distributed firing mode works with a control level and a fixed time-base of 100 full cycles (2 seconds for 50 Hz). This mode operates with full cycles and it distributes the ON cycles as evenly as possible over the time base. In this mode, since the resolution is 1% and the time base is of 100 full cycles, the control level is equal to the number of full cycles over the whole time base. 

1% = 1 full cycle every 100 cycles 

2% = 2 full cycles every 100 cycles = 1 full cycle every 50 cycles 

Output with Distributed firing mode @ 33% control level: 

**==> picture [427 x 7] intentionally omitted <==**

**----- Start of picture text -----**<br>
0.0 0.2 0.4 0.6 0.8 1.0<br>**----- End of picture text -----**<br>


Output with Distributed firing mode @ 50% control level: 

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**----- Start of picture text -----**<br>
0.0 0.2 0.4 0.6 0.8 1.0<br>**----- End of picture text -----**<br>


Output with Distributed firing mode @ 66% control level: 

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**----- Start of picture text -----**<br>
0.0 0.2 0.4 0.6 0.8 1.0<br>**----- End of picture text -----**<br>


The advantage of Distributed over Burst is the reduction in thermal cycling. On the other hand, Distributed suffers from worse harmonics/emissions than Burst. 

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## **Switching modes (Continued)** 

## **Advanced Full Cycle Firing** 

Advanced Full Cycle (AFC) firing works on the same concept as Distributed but rather than distributing full cycles, half cycles are distributed. This mode also works over a time base of 100 full cycles (200 half cycles). In this mode, since the resolution is 1% and the time base is of 100 full cycles, the control level is equal to the number of full cycles over the whole time base. 

1% = 2 half cycles every 200 half cycles = 1 half cycle every 100 half cycles 

2% = 4 half cycles every 200 half cycles = 1 half cycle every 50 half cycles 

Output with Advanced full cycle firing mode @ 33% control level: 

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**----- Start of picture text -----**<br>
0.0 0.2 0.4 0.6 0.8 1.0<br>**----- End of picture text -----**<br>


Output with Advanced full cycle firing mode @ 50% control level: 

**==> picture [418 x 133] intentionally omitted <==**

**----- Start of picture text -----**<br>
0.0 0.2 0.4 0.6 0.8 1.0<br>Output with Advanced full cycle firing mode @ 66% control level:<br>0.0 0.2 0.4 0.6 0.8 1.0<br>**----- End of picture text -----**<br>


Output with Advanced full cycle firing mode @ 66% control level: 

The advantage of AFC over Burst is the reduction in thermal cycling. Another advantage of AFC is that visual flicker is less noticeable than Distributed thus making it suitable for shortwave infrared heater applications. 

AFC has the disadvantage of worse harmonics/emissions than Burst and also slightly worse than Distributed. 

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**RG..CM..N** 

**==> picture [40 x 40] intentionally omitted <==**

## **Switching modes (Continued)** 

## **Phase angle Mode (available only on RGx1P..CM..N)** 

The Phase Angle switching mode works in accordance with the phase angle control principle. The power delivered to the load is controlled by the firing of the thyristors over each half mains cycle. The firing angle depends on the control level that determines the ouput power to be delivered to the load. The power to the load is varied linearly with the control level. 

Output with Phase Angle mode @ 33% control level: 

**==> picture [391 x 64] intentionally omitted <==**

Output with Phase Angle mode @ 50% control level: 

**==> picture [391 x 65] intentionally omitted <==**

Output with Phase Angle mode @ 66% control level: 

**==> picture [391 x 62] intentionally omitted <==**

The advantage of Phase Angle over the other switching modes is its precise resolution of power. However, Phase Angle generates excessive harmonics vs other switching modes. With Phase Angle control, the flickering of IR heaters is eliminated completely. 

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**RG..CM..N** 

## **Switching modes (Continued)** 

## **Soft starting (available only on RGx1P..CM..N)** 

Soft starting is utilised to reduce the start-up current of loads having a high cold-to-hot resistance ratio such as short wave infrared heaters. The tyristor firing angle is gradually increased in order to apply the power to the load smoothly. Soft start can be applied with all the other available switching modes (ON/OFF, Burst, Distributed full cycle, Advanced full cycle and Phase angle). When applied with phase angle, the soft start will stop at the set control level whereas for the other switching mode the  soft start will stop until fully ON. Soft start shall be applied upon power up and after a number of non-firing cycles settable by the user (check the User manuals for each communication protocol  for more information). 

Soft start with phase angle 

Soft start with ON/OFF, Burst, Distributed full cycle and Advanced full cycle 

There are two type of soft start modes on the RGx1P..CM..N: 

## **Soft start with time mode** 

This soft start mode will apply the power smoothly to the load over a time period of maximum 25.5s (settable by the user via the communication). Check the user manual of each available communication protocol for more information. 

## **Soft start with current limit mode** 

This soft start mode works with a current limit set by the user via the communication. The soft start time will adapt such that the set current limit is not exceeded and the soft start occurs in the shortest amount for time. The recommended setting for the current limit is 1.2 - 1.5 times the nominal current. The maximum settable current limit is 2 times the rated current of the RG..CM..N variant used. If the current limit is set too low and is reached before soft start is completed, a warning will be notified via the communication. Check the user manual of each available communication protocol for more information. 

## **Voltage compensation** 

When voltage compensation is utilised, the power on the output of the solid state relay will remain balanced despite any voltage deviations from normal readings. The algorithm uses a reference voltage set by the user via the communication to compute the compensation factor. A new control level is calculated by applying the compensation factor on the control level from the main controller. Check the user manual of each available communication protocol for more information. The compensation factor (C.F.) applied on the control level is calculated as follows: 

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**==> picture [40 x 40] intentionally omitted <==**

## **Measurements** 

**==> picture [483 x 245] intentionally omitted <==**

**----- Start of picture text -----**<br>
Parameter Description<br>This reports the measured load RMS current.<br>Current<br>Accuracy: +/- 10% for loads > 500mA,  +/- 20% for loads between < 500mA<br>Hold current The average current of the last 16 ON half cycles. This measurement can be used for I [2]  control<br>RMS voltage reading (L1-Ref voltage) that is the supply voltage across the SSR + load<br>Voltage (Ref signal connection is required)<br>Accuracy: +/- 10%<br>Frequency This reports the measured line frequency.<br>This reports the apparent power that is a multiplication of the voltage RMS value and current<br>Apparent power<br>RMS value. (Ref signal connection is required)<br>This reports the real power reading that is based on the instantaneous voltage & current<br>Real power<br>multiplications. (Ref signal connection is required)<br>SSR Running  This is a count of the time during which the SSR output is ON. On switch ON, this parameter<br>hours  reports the recorded value at the last switch OFF.<br>This is a count of the time during which the output of SSR is ON. On switch ON, this parameter<br>Load Running hours reports the last value before switch OFF. This measurement can be modified in case of a load or<br>SSR replacement.<br>Energy  This reports the energy reading in kWh.  On switch ON, this parameter reports the recorded<br>Consumption value at the last switch OFF. (Ref signal connection is required)<br>**----- End of picture text -----**<br>


Note 1: For further information refer to the respective NRG user manual for each communication protocol. Note 2: Ref signal connection is recommended with loads less than 1A 

## **LED indicators** 

|**LOAD**|Green|The Load LED refects the status of the load depending on the presence of the control signal.<br>During an over-temperature condition, the LOAD LED will behave according to the indications<br>in the table "LOAD LED indications in over-temperature condition" below|The Load LED refects the status of the load depending on the presence of the control signal.<br>During an over-temperature condition, the LOAD LED will behave according to the indications<br>in the table "LOAD LED indications in over-temperature condition" below|
|---|---|---|---|
|**BUS**|Yellow|ON:|Duringa response from the RG..N to the NRGC..|
|||OFF:|Communication between the NRGC.. and RG..Ns is idle or during the<br>transmission of a command from the NRGC.. to the RG..N|
|**ALARM**|Red|ON:|Fully ON or fashing when alarm condition is present.<br>Refer to Alarm Management section|
|||OFF:|No alarm condition|



## **LOAD LED indications in over-temperature condition** 

**==> picture [484 x 38] intentionally omitted <==**

**----- Start of picture text -----**<br>
RG..N supply<br>Over-temperature<br>Control signal (through internal bus by  LOAD LED green<br>condition<br>RCRGN..)<br>**----- End of picture text -----**<br>


|**Control signal**|**RG..N supply**<br>**(through internal bus by**<br>**RCRGN..)**|**Over-temperature**<br>**condition**|**LOAD LED green**|
|---|---|---|---|
|||||
|ON|OFF|Detection not possible<br>without BUS connected|ON9<br>OFF10|
|ON|ON|OFF|ON|
|ON|ON|ON|OFF|
|OFF|OFF|Detection not possible<br>without BUS connected|OFF|
|OFF|ON|ON|OFF|
|OFF|ON|OFF|OFF|



9. If control signal is via A1-A2 (Not applicable for RGx1P..CM..N) 

10. If control signal is via BUS 

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**RG..CM..N** 

**==> picture [40 x 40] intentionally omitted <==**

## **Alarm management** 

|**Alarm**|**management**|**management**|**management**|**management**|
|---|---|---|---|---|
|**Alarm**<br>**condition**<br>**present**|• The state of the Red LED of the respective RG..N is ON with a specifc fashing rate<br>• All alarms are accessible via the communication interface.<br>For further information refer to the respective NRG user manual for each communicationprotocol.||||
|**Alarm**<br>**types**|**No. of**<br>**fashes**||**Description of fault**||
||100%<br>ON||**Over-temperature:**<br>- The RG..N is operating outside its operating range causing the junction to overheat<br>- The output of the RG..N is switched OFF (irrespective of the control presence)<br>to prevent damage to the RG..N<br>- The alarm is restored automaticallyafter the cooling-ofperiod||
|||1|**Load deviation:**<br>Load deviation is activated if the values of the Voltage Reference and Current Reference<br>are > 0 either through a ‘TEACH’ command or updated manually. This alarm is issued if a<br>change in current > than the Percentage Deviation is detected. This alarm is issued only if<br>a change in current is irrespective of a change in voltage. For further information refer to the<br>respective NRG user manual for each communication protocol.||
|||2|**Mains loss:**<br>Voltage and current signals are absent. The cause is a mains loss (with REF terminal<br>connected). Without 'REF' terminal this alarm will indicate a mains loss or a load loss.||
|||3|**Load loss / SSR open circuit:**<br>Load is not switching ON when control signal is present. The cause is either a load loss or a<br>RG..N open circuit condition||
|||4|**SSR short circuit:**<br>Current fowingthrough the RG..N output in the absence of a control signal||
|||5|**Frequency Out of Range:**<br>- The RG..N is operated outside the range set by the Over Frequency and Under Frequency<br>Limit settings.<br>- Default range is 44 – 66 Hz<br>- The RG..N will not stop operating if the frequency measured is out of the set range. The<br>alarm is restored automaticallywhen the frequencyis back within the expected range||
|||6|**Current Out of Range:**<br>- The RG..N is operated outside the range set by the Over Current and Under Current Limit<br>settings.<br>- Default range is 0 – max. rating of the respective RG..N<br>- The RG..N will not stop operating if the current measured is out of the set range. The alarm<br>is restored automaticallywhen the current is back within the expected range||
|||7|**Voltage Out of Range:**<br>- The RG..N is operated outside the range set by the Over Voltage and Under Voltage Limit<br>settings.<br>- Default range is 0 – 660 V<br>- The RG..N will not stop operating if the voltage measured is out of the set range. The alarm<br>is restored automatically when the voltage is back within the expected range||
|||8|**Communication error (BUS):**<br>An error in the communication link(internal bus)between the NRGC.. and RG..Ns||
|||9|**Internal error:**<br>Bus supplyout of range, hardware damage or detection of abnormal conditions||
|**Flashing**<br>**rate**||0.5s||3s|
||||||



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**==> picture [40 x 40] intentionally omitted <==**

## **Short circuit protection** 

## **Protection Co-ordination, Type 1 vs Type 2:** 

Type 1 protection implies that after a short circuit, the device under test will no longer be in a functioning state. In Type 2 co-ordination the device under test will still be functional after the short circuit. In both cases, however the short circuit has to be interrupted. The fuse between enclosure and supply shall not open. The door or cover of the enclosure shall not be blown open. There shall be no damage to conductors or terminals and the conductors shall not separate from terminals. there shall be no breakage or cracking of insulating bases to the extent that the integrity of the mounting of live parts is impaired. Discharge of parts or any risk of fire shall not occur. 

The product variants listed in the table hereunder are suitable for use on a circuit capable of delivering not more than 100,000 Arms Symmetrical Amperes, 600 Volts maximum when protected by fuses. Tests at 100,000 A were performed with Class J fuses, fast acting; please refer to the table below for maximum allowed ampere rating of the fuse. Use fuses only. 

Tests with Class J fuses are representative of Class CC fuses. 

|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|**Protection co-ordination Type 1 according to UL 508**|
|---|---|---|---|---|---|---|---|---|---|---|
|**Part No.**||**Prospective short**<br>**circuit current**<br>**[kArms]**|||**Max fuse size [A]**|**Class**|||**Max. voltage [VAC]**||
|RGS..50, RGC..25||100|||30|J or CC|||600||
|RGS..92, RGC..32,<br>RGC..42, RGC..62||100|||80|J|||600||
||||||||||||
|**Protection co-ordination Type 2 with semiconductor fuses**|||||||||||
||**Prospective**||**Mersen(Ferraz Shawmut)**||||**Siba**|||**Max. voltage**<br>**[VAC]**|
|**Part No.**|**short circuit**<br>**current [kArms]**||**Max fuse**<br>**size[A]**|**Part number**|||**Max fuse**<br>**size[A]**|**Part number**|||
|RGC..25|10||40|6.9xx CP GRC 22x58 /40|||32|50 142 06.32||660|
||100||||||||||
|RGC..32<br>RGC..42|10||63|6.9xx CP URC 14x51 /63|||80|50 194 20.80||660|
||||70|A70QS70-4|||||||
||100||63|6.9xx CP URC 14x51 /63|||||||
||||70|A70QS70-4|||||||
|RGC..62|10||100|6.9xx CP GRC 22x58 /100<br>A70QS100-4|||100|50 194 20.100||660|
||100|||6.621 CP URGD 27x60 /100<br>A70QS100-4|||||||
|RGS..50|10||80|6.621 CP URQ 27x60 /80|||50|50 142 06.50||660|
||||70|A70QS70-4|||||||
||100||80|6.621 CP URQ 27x60 /80|||||||
||||70|A70QS70-4|||||||
|RGS..92|10||125|6.621 CP URD 22x58 /125<br>A70QS125-4|||125|50 194 20.125||660|
||100||||||||||



xx = 00, without fuse trip indication, xx = 21, with fuse trip indication 

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**==> picture [40 x 40] intentionally omitted <==**

**==> picture [484 x 49] intentionally omitted <==**

**----- Start of picture text -----**<br>
Protection co-ordination Type 2 with Minature Circuit Breakers (M.C.B.s)<br>Solid State Relay  ABB Model no. for Z  ABB Model no. for B  Wire cross sectional  Minimum length of<br>type - type M. C. B. (rated  - type M. C. B. (rated  area [mm [2] ] Cu wire conductor<br>current) current) [m] [11]<br>**----- End of picture text -----**<br>


|**Protection co-ordination Type 2 with Minature Circuit Breakers(M.C.B.s)**|**Protection co-ordination Type 2 with Minature Circuit Breakers(M.C.B.s)**|**Protection co-ordination Type 2 with Minature Circuit Breakers(M.C.B.s)**|**Protection co-ordination Type 2 with Minature Circuit Breakers(M.C.B.s)**|**Protection co-ordination Type 2 with Minature Circuit Breakers(M.C.B.s)**|
|---|---|---|---|---|
|**Solid State Relay**<br>**type**|**ABB Model no. for Z**<br>**- type M. C. B. (rated**<br>**current)**|**ABB Model no. for B**<br>**- type M. C. B. (rated**<br>**current)**|**Wire cross sectional**<br>**area [mm2]**|**Minimum length of**<br>**Cu wire conductor**<br>**[m]11**|
||||||
|RGS..50, RGC..25<br>(1800 A2s)|1-pole<br>S201 - Z10 (10 A)|S201-B4 (4 A)|1.0<br>1.5<br>2.5|7.6<br>11.4<br>19.0|
||S201 - Z16 (16 A)|S201-B6 (6 A)|1.0<br>1.5<br>2.5<br>4.0|5.2<br>7.8<br>13.0<br>20.8|
||S201 - Z20 (20 A)|S201-B10 (10 A)|1.5<br>2.5|12.6<br>21.0|
||S201 - Z25 (25 A)|S201-B13 (13 A)|2.5<br>4.0|25.0<br>40.0|
||2-pole<br>S202 - Z25 (25 A)|S202-B13 (13 A)|2.5<br>4.0|19.0<br>30.4|
|RGS..92, RGC..32,<br>RGC..42, RGC..62<br>(18000 A2s)|1-pole<br>S201 - Z32 (32 A)|S201-B16 (16 A)|2.5<br>4.0<br>6.0|3.0<br>4.8<br>7.2|
||S201 - Z50 (50 A)|S201-B25 (25 A)|4.0<br>6.0<br>10.0<br>16.0|4.8<br>7.2<br>12.0<br>19.2|
||S201 - Z63 (63 A)|S201-B32 (32 A)|6.0<br>10.0<br>16.0|7.2<br>12.0<br>19.2|



## 11. Between MCB and Load (including return path which goes back to the mains) 

Note: A prospective current of 6 kA and a 230 / 400 V power supply is assumed for the above suggested specifications. For cables with different cross section than those mentioned above please consult Carlo Gavazzi's Technical Support Group. 

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**RG..CM..N** 

## **Dimensions** 

## **RGS...KEN** 

**RGS...GEN** 

Housing width tolerance +0.5mm, -0mm as per DIN 43880. All other tolerances +/- 0.5mm. Dimensions in mm. 

Note: Images are for illustrative purposes only 

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**RG..CM..N** 

## **RGC...25KEN, RGC...32KEN** 

## **RGC...32GEN** 

Housing width tolerance +0.5mm, -0mm as per DIN 43880. All other tolerances +/- 0.5mm. Dimensions in mm. 

Note: Images are for illustrative purposes only 

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**RG..CM..N** 

## **RGC...42GEN** 

**RGC...62GEN** 

Housing width tolerance +0.5mm, -0mm as per DIN 43880. All other tolerances +/- 0.5mm. Dimensions in mm. 

Note: Images are for illustrative purposes only 

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## **RG..CM..N** 

## **Load connection diagram** 

Loads connected between phase and neutral. The Ref connections can be looped from one RG..CM..N to another sicne all the loads have the same return path 

**==> picture [329 x 255] intentionally omitted <==**

**----- Start of picture text -----**<br>
L1<br>L2<br>L3<br>N<br>TO I 1 TO I 1 I 1 TO<br>Ref Ref Ref<br>So oP as eal So oP as FA Po FA So oP<br>Ref<br>} ) ! ) ) !<br>Peus Peus Peus Peus Peus Peus<br>BUS” __Bus ” BUS” __Bus ” __Bus ” BUS”<br>ats A ats A ats A<br>uuuvu<br>LOAD LOAD LOAD LOAD LOAD LOAD<br>**----- End of picture text -----**<br>


Loads connected between phases. Reference connection (Ref) should always follow the return path of the load 

**==> picture [329 x 256] intentionally omitted <==**

**----- Start of picture text -----**<br>
L1<br>L2<br>L3<br>N<br>} o D i J o ] i 7 i ] i<br>TO tO I TO tO I tO I tOI<br>Ref Ref Ref Ref Ref Ref<br>oe =P PS oe oe =P PS oe PS oe PS oe<br>Ref<br>) ) ) ) ) )<br>Ats__BUS A2-| — Aly __B us_US AQ ” Ats__BUS A2-| — Aly __B us_US AQ ” Aly __B us_US AQ ” Aly _ _Bus_”_BUS AQ”<br>cyu v u v cyu v u v u v u v<br>LOAD LOAD LOAD LOAD LOAD LOAD<br>**----- End of picture text -----**<br>


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## **RG..CM..N** 

## **Load connection diagram** 

The NRG solid state relay can be utilised with 3-phase loads having a star with neutral configuration.  The reference connections (Ref) can be looped from one RG..CM..N to another and connected to neutral. 

**==> picture [251 x 253] intentionally omitted <==**

**----- Start of picture text -----**<br>
L1<br>L2<br>L3<br>N<br>| i D i ‘a fi<br>TO qj Toy Toy<br>Ref Ref Ref<br>joe oP joe oP joe oP<br>Ref<br>ALARI ALARI ALARI<br>{ { {<br>Psus Psus Psus<br>U U U U u U<br>LOAD LOAD LOAD<br>**----- End of picture text -----**<br>


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## **RG..CM..N** 

## **BUS connection diagram** 

To another RG..N or termination resistor **RGN-TERMRES** in case of the last RG..N on the BUS chain 

**==> picture [33 x 7] intentionally omitted <==**

**----- Start of picture text -----**<br>
NRGC..<br>**----- End of picture text -----**<br>


**==> picture [117 x 7] intentionally omitted <==**

**----- Start of picture text -----**<br>
RG..N RG..N RG..N<br>**----- End of picture text -----**<br>


## **Functional diagram** 

**==> picture [461 x 170] intentionally omitted <==**

**----- Start of picture text -----**<br>
BUS<br>Ref<br>Ref<br>BUS<br>Vn<br>—— =<br>In<br>Regulation<br>[| a 1/L1 Line<br>A1 (+)* EfS Regulation s Y<br>A2 (-)*<br>2/T1 Load<br>**----- End of picture text -----**<br>


*applies only for external control (Not applicable for RGx1P..CM..N) 

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## **RG..CM..N** 

## **Mounting** 

## **RGC** 

**==> picture [435 x 312] intentionally omitted <==**

**----- Start of picture text -----**<br>
Mounting on DIN rail<br>Dismounting from DIN rail<br>RGS<br>Heatsink<br>RG..N power module<br>—~\ ge)<br>Step 1:<br>max. 1.5 Nm<br>te<br>RG..N control module<br>max. 1.5Nm<br>1 screw M4, Phillips PH1<br>(provided with SSR) <— ¥<br>Max. mounting torque: 0.3 mm Thermal compound<br>Sp eee<br>Step 2:<br>max. 0.3 Nm | 2 screws + washer M5 x 30 mm<br>a  (not provided with SSR)<br>Max. mounting torque: 1.5 Nm<br>**----- End of picture text -----**<br>


Step 1: Mount RG..N power module to Heatsink Step 2: Mount RG..N control module on RG..N power module 

A **!** 

Make sure that the sin code marked on the control unit matches the sin code of the power unit before mounting 

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## **RG..CM..N** 

## **Installation** 

**==> picture [386 x 272] intentionally omitted <==**

**----- Start of picture text -----**<br>
50 mm<br>X2<br>X1 - X1 Me oP X2 Me oP 2 oF Me oP Me =F<br>100 mm<br>ee;<br>50 mm<br>X1 = 20 mm<br>X2 = Refer to Derating vs. Spacing Curves<br>**----- End of picture text -----**<br>


**==> picture [5 x 13] intentionally omitted <==**

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


NRG internal bus cables should be isolated from high voltage cables 

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**==> picture [40 x 40] intentionally omitted <==**

**==> picture [484 x 446] intentionally omitted <==**

**----- Start of picture text -----**<br>
Connection specifications<br>Power connection<br>Terminal 1/L1, 2/T1<br>Conductors Use 75°C copper (Cu) conductors<br>RG..KEN RG..GEN<br>Stripping length 12mm 11mm<br>Connection type M4 screw with captivated washer M5 screw with box clamp<br>Rigid (solid & stranded) 2x 2.5 – 6.0 mm² 1x 2.5 – 6.0 mm² 1x 2.5 – 25.0 mm²<br>UL/CSA rated data 2x 14 – 10 AWG 1x 14 – 10 AWG 1x 14 – 3 AWG<br>2x 1.0 – 2.5 mm²<br>2x 2.5 – 4.0 mm² 1x 1.0 – 4.0 mm² 1x 2.5 – 16.0 mm²<br>Flexible with end sleeve<br>2x 18 – 14 AWG  1x 18 – 12 AWG 1x 14 – 6 AWG<br>2x 14 – 12 AWG<br>2x 1.0 – 2.5 mm²<br>Flexible without end  2x 2.5 – 6.0 mm² 1x 1.0 – 6.0 mm² 1x 4.0 – 25.0 mm²<br>sleeve 2x 18 – 14 AWG  1x 18 –10 AWG 1x 12 –3 AWG<br>2x 14 – 10 AWG<br>Posidrive bit 2 Posidrive bit 2<br>Torque specifications UL: 2.0 Nm (17.7 lb-in) UL: 2.5 Nm (22 lb-in)<br>IEC: 1.5 – 2.0 Nm (13.3 – 17.7 lb-in) IEC: 2.5 – 3.0 Nm (22 – 26.6 lb-in)<br>Aperture for termination<br>12.3 mm n/a<br>lug (fork or ring)<br>M5, 1.5 Nm (13.3 lb-in)<br>Protective Earth (PE)<br>M5 PE screw is not provided with the solid state relay. PE connection is required when<br>connection<br>product is intended to be used in Class 1 applications according to EN/IEC 61140<br>**----- End of picture text -----**<br>


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**==> picture [481 x 324] intentionally omitted <==**

**----- Start of picture text -----**<br>
||||
|---|---|---|
|Control & Ref connection|
|a|
|Ref (x2 poles internally shorted on RG..N)|
|A1+, A2- (RGM25 plug not provided) (not applicable for RGx1P..CM..N)|
|Terminals|
|view|view|
|Conductors|Use 60/75°C copper (Cu) conductors|
|Stripping length|11 – 12 mm|
|ee|
|a|Connection type|Spring plug, pitch 5.08 mm|
|Rigid (solid & stranded)|
|0.2 – 2.5 mm|[2]|, 26 – 12 AWG|
|UL/CSA rated data|
|Flexible with end sleeve|0.25 – 2.5 mm|[2]|
|ee|
|Flexible without end|
|0.25 – 2.5 mm|[2]|
|sleeve|
|Flexible with end sleeve|
|0.5 – 1.0 mm|[2]|
|using TWIN ferrules|
|Ref internal short current|
|< 2 AAC|
|handling capability|

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


**BUS connection** ~~ee~~ BUS (x2) ~~a~~ BUS BUS ~~| Ll~~ **Terminal** ~~a [|~~ Bottom view 

**==> picture [325 x 206] intentionally omitted <==**

**----- Start of picture text -----**<br>
||||
|---|---|---|
|Terminal|
|[||
|Bottom|
|view|
|RCRGN-xxx (where xxx refers to the length in cm)|
|5-way terminated with micro USB connector|
|Cable lengths available:|
|10 cm|RCRGN-010-2|
|Type|
|25 cm|RCRGN-025-2|
|75 cm|RCRGN-075-2|
|150 cm|RCRGN-150-2|
|350 cm|RCRGN-350-2|
|500 cm|RCRGN-500-2|
|a|Conductors|+24 V, GND, Data, Data, Autoconfigure line|

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


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## **RG..CM..N** 

## **RCRGN..** 

## **NRG internal BUS cable** 

## **Main features** 

- Cables available at various lengths to provide the internal BUS of the NRG system 

- Cables terminated at both ends with a microUSB plug 

- Connects the NRG controller to the RG..N solid state relay and respective RG..N solid state relays 

## **Description** 

The **RCRGN** cables are proprietary cables that must be used with the NRG system for the internal BUS. These cables connect the NRG controller to the RG..N solid state relays and respective RG..N solid state relays. 

The RCRGN... are 5-way cables carrying the communication, supply and autoconfiguration / auto-addressing lines. By means of autoconfiguration / auto-addressing, the RG..Ns are assigned a unique ID based on the physical location and on the internal BUS. 

## **Carlo Gavazzi compatible components** 

|**Description**|**Component code**|**Notes**|
|---|---|---|
|**NRG Controller**|NRGC..|**• NRGC:**NRG controller with Modbus communication.<br>**• NRGC-PN:**NRG controller with PROFINET communication.<br>**• NRGC-EIP:**NRG controller with EtherNet/IP communication.<br>**• NRGC-ECAT:**NRG controller with EtherCAT communication.<br>**• NRGC-MBTCP:**NRG controller with Modbus TCP communication.<br>1x RGN-TERMRES is included in the NRGC.. packaging. The<br>RGN-TERMRES is to be mounted on the last RG..N on the bus chain.|
|**Solid state relays**|RG..N|NRG solid state relays|



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**RG..CM..N** 

**Order code** > **RCRGN - - 2** ~~e~~ ee 

Enter the code entering the corresponding option instead of 

|**Code**|**Option**|**Description**|**Notes**|
|---|---|---|---|
|**R**|**-**|Cables||
|**C**|**-**|||
|**R**|**-**|Suitable for the NRG system||
|**G**|**-**|||
|**N**|**-**|||
||**010**|10 cm cable length|packed x 4pcs.|
||**025**|25 cm cable length|packed x 1pc.|
||**075**|75 cm cable length|packed x 1pc.|
||**150**|150 cm cable length|packed x 1pc.|
||**350**|350 cm cable length|packed x 1pc.|
||**500**|500 cm cable length|packed x 1pc.|
|**2**|**-**|Terminated at the both ends with a microUSB connector||



COPYRIGHT ©2024 Content subject to change. Download the PDF: http://gavazziautomation.com 

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## Links

- [View this product on Novapart](https://novapart.co/products/RGC1A60CM32KEN/solid-state-relay-spst-30-a-660-vac-din-rail-panel)
- [Request a quote for this part](https://novapart.co/quote/)
- [Supplier page](https://es.farnell.com/carlo-gavazzi/rgc1a60cm32ken/solid-state-relay-spst-30a-32vdc/dp/4528674)
---

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