# Supercapacitor, EDLC, 25 F, 2.7 V, Radial Leaded, -10%, +30%, 8 mm, 1000 hours @ 60°C

![Product image](https://novapart.co/image/farnell:2696616/)

**URL**: https://novapart.co/products/SCCU25B256SRB/supercapacitor-edlc-25-f-27-v-radial-leaded-10-30
**SKU**: SCCU25B256SRB
**Manufacturer**: KYOCERA AVX
**Category**: Passive Components || Capacitors || Supercapacitors || EDLC - Electric Double Layer Capacitors
**Price**: €0.9710
**Stock**: 10+
**Lead Time**: 169 days (indicative)

## Description

Capacitance:25F; Voltage Rating:2.7V; Capacitor Terminals:Radial Leaded; Product Range:SCC Series; Capacitance Tolerance:+30%, -10%; Lead Spacing:8mm; Lifetime @ Temperature:1000 h

## Specifications

| Parameter | Value |
|---|---|
| Esr | 0.027ohm |
| Svhc | No SVHC (17-Jan-2023) |
| Capacitance | 25F |
| Voltage(Dc) | 2.7V |
| Lead Spacing | 8mm |
| Product Range | SCC Series |
| Product Width | - |
| Qualification | - |
| Product Height | 25mm |
| Product Length | - |
| Product Diameter | 16mm |
| Capacitor Mounting | Through Hole |
| Capacitor Terminals | Radial Leaded |
| Capacitance Tolerance | -10%, +30% |
| Lifetime @ Temperature | 1000 hours @ 60°C |
| Capacitor Case / Package | Can |
| Operating Temperature Max | 65°C |
| Operating Temperature Min | -40°C |

## Datasheet

📄 [Download PDF](https://novapart.co/datasheet/farnell:2696616/)

## SCC Series 

## **High Capacitance Cylindrical SuperCapacitors** 

The new series of cylindrical electrochemical double-layer capacitors offers excellent pulse power handling characteristics based on the combination of very high capacitance and very low ESR. Used by themselves or in conjunction with primary or secondary batteries, they provide extended back up time, longer battery life, and provide instantaneous power pulses as needed. Offers great solutions to Hold Up, Energy Harvesting, and Pulse Power Applications. 

## **FEATURES** 

- Cap Values from 1F – 3000F 

- High pulse power capability 

- Low ESR 

- Low Leakage Current 

## **APPLICATIONS** 

- Camera Flash Systems 

- Energy Harvesting 

- GSM/GPRS Pulse Applications 

- UPS/Industrial 

- Wireless Alarms 

- Remote Metering 

- Scanners 

- Toys and Games 

## **HOW TO ORDER** 

**SCC R 12** 

**Series Diameter Case Length** SuperCap Q = 6.3mm Two digits Cylindrical R = 8mm represent case S = 10mm length in mm, with T = 12.5mm the exception of U = 16mm the following: V = 18mm 1E = 138mm W = 22mm X = 30mm Y = 35mm Z = 60mm 

**B 105 P** tT TT TT **Capacitance Code Tolerance** 1st two digits represent P = +100%/-0% significant figures 3rd S = +30%/-10% digit represents multiplier (number of zeros to follow) 

**Voltage Code** B = 2.7V 

**R B** _ T ~~TF~~ **Package Custom Code** B = Bulk A1= 4mm Bent Leads* T = Tray* C1 = 2mm Bent Leads* 

**Lead Format** R = Radial S = Solder Pin C = Cylindrical Lug W = Screw 

*Inquire about availability 

## **QUALITY INSPECTIONS** 

Parts are tested for Life Cycle, high temperature load life, temperature characteristics, vibration resistance, and humidity characteristics. See page 2 for more information. 

## **TERMINATION** 

These SuperCapacitors are compatible with hand soldering, as well as reflow and wave soldering processes, so long as appropriate precautions are followed. See page 4 for more information. 

## **OPERATING TEMPERATURE** 

- -40°C to +65°C @ 2.7V 

- -40°C to +85°C @ 2.3V 

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LEAD-FREE COMPATIBLE<br>COMPONENT<br>For RoHS compliant products,<br>please select correct termination style.<br>**----- End of picture text -----**<br>


1 

050719 

## SCC Series 

## **High Capacitance Cylindrical SuperCapacitors** 

**RATING & PART NUMBER REFERENCE** 

|**AVX Part Number**<br>~~po}~~|**Diameter**<br>**(mm)**<br>~~po}ty~~|**Length**<br>**(mm)**<br>~~ty~~|**Rated**<br>**Capacitance**<br>**(F)**<br>~~ty~~<br>||**Capacitance**<br>**Tolerance**<br>~~et~~|**Rated**<br>**Voltage**<br>**(V)**<br>~~et~~|**Rated**<br>**Temperature**<br>**(°C)**<br>~~etPe~~|**DCL Max @**<br>**72 Hrs (µA)**<br>~~Pe~~|**ESR Max**<br>**@ 1000 Hz**<br>**(mΩ)**<br>~~Pe~~|**ESR Max @**<br>**DC (mΩ)**<br>~~Pe~~|**Peak**<br>**Current (A)**|**Power**<br>**Density**<br>**(W/kg)**|**Max Energy**<br>**(Wh)**|**Energy**<br>**Density**<br>**(Wh/kg)**|
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
|**Radial Lead**<br>~~po} ty~~<br>|<br>~~et Pe~~<br>~~po~~||||||||||||||
|SCCQ12B105PRB<br>~~po~~|6.3|12|1|+100%/-0%|2.7/2.3*|65/85*|6|200|500|0.90|2692|0.0010|1.56|
|SCCR12B105PRB<br>~~po~~<br>~~———~~|8<br>~~———~~|12<br>~~———~~|1|+100%/-0%|2.7/2.3*|65/85*|6|150|500|0.90|1842|0.0010|1.07|
|SCCR16B205PRB<br>~~———~~|8<br>~~———~~|16<br>~~———~~|2|+100%/-0%|2.7/2.3*|65/85*|10|100|360|1.57|2113|0.0020|1.76|
|SCCR20B335PRB<br>~~———~~|8<br>~~———~~|20<br>~~———~~|3.3|+100%/-0%|2.7/2.3*|65/85*|12|95|290|2.28|2080|0.0033|2.30|
|SCCR25B505PRB<br>~~———~~|8<br>~~———~~|25<br>~~———~~|5|+100%/-0%|2.7/2.3*|65/85*|15|85|220|3.21|2339|0.0051|2.98|
|SCCS20B505PRB<br>~~—————~~|10<br>~~—————~~|20<br>~~—————~~|5<br>~~—————~~|+100%/-0%<br>~~—————~~|2.7/2.3*<br>~~—————~~|65/85*<br>~~—————~~|15<br>~~—————~~|70<br>~~—————~~|180<br>~~—————~~|3.55<br>~~—————~~|2314<br>~~—————~~|0.0051<br>~~—————~~|2.41<br>~~—————~~|
|SCCS25B705PRB<br>~~—————~~|10<br>~~—————~~|25<br>~~—————~~|7<br>~~—————~~|+100%/-0%<br>~~—————~~|2.7/2.3*<br>~~—————~~|65/85*<br>~~—————~~|20<br>~~—————~~|60<br>~~—————~~|150<br>~~—————~~|4.61<br>~~—————~~|2243<br>~~—————~~|0.0071<br>~~—————~~|2.73<br>~~—————~~|
|SCCS30B106PRB<br>~~Se~~|10<br>~~Se~~|30<br>~~Se~~|10|+100%/-0%|2.7/2.3*|65/85*|30|40|75|7.71|3763|0.0101|3.27|
|SCCT20B106PRB<br>~~Se~~|12.5<br>~~Se~~|20<br>~~Se~~|10|+100%/-0%|2.7/2.3*|65/85*|30|50|75|7.71|3431|0.0101|2.98|
|SCCT30B156SRB<br>~~—~~|12.5|30|15|+30%/-10%|2.7/2.3*|65/85*|50|35|80|9.20|2430|0.0152|3.38|
|SCCU25B256SRB<br>~~—~~<br>~~**S**S~~|16<br>~~S~~|25|25|+30%/-10%|2.7/2.3*|65/85*|60|27|50|15.00|2397|0.0253|3.47|
|SCCU30B356SRB<br>~~**S**S~~|16<br>~~S~~|30|35|+30%/-10%|2.7/2.3*|65/85*|70|20|40|19.69|2514|0.0354|4.07|
|SCCT47B406SRB<br>~~**S**S~~|12.5<br>~~S~~|47|40|+30%/-10%|2.7/2.3*|65/85*|75|19|29|25.00|4022|0.0405|5.40|
|SCCV40B506SRB<br>~~**S**S~~|18<br>~~S~~|40|50|+30%/-10%|2.7/2.3*|65/85*<br>~~S~~|75<br>~~S~~|18<br>~~S~~|20<br>~~S~~|33.75<br>~~S~~|3365<br>~~S~~|0.0506<br>~~S~~|3.89<br>~~S~~|
|SCCV60B107SRB<br>~~**S**S~~<br>~~Se~~|18<br>~~S~~<br>|60<br>|100<br>|+30%/-10%<br>|2.7/2.3*<br>|65/85*<br>~~S~~<br>|260<br>~~S~~<br>|15<br>~~S~~<br>|18<br>~~S~~<br>|48.21<br>~~S~~<br>|2430<br>~~S~~<br>|0.1013<br>~~S~~<br>|5.06<br>~~S~~<br>|
|**Solder Pin Lead**<br>~~Se~~||||||||||||||
|SCCW45B107SSB<br>~~Se~~|22<br>|45<br>|100<br>|+30%/-10%<br>|2.7/2.3*<br>|65/85*<br>|260<br>|8<br>|12<br>|61.36<br>|3391<br>|0.1013<br>|4.71<br>|
|SCCX50B207SSB<br>~~Se~~|30<br>|50<br>|200<br>|+30%/-10%<br>|2.7/2.3*<br>|65/85*<br>|600<br>|6<br>|9<br>|96.43<br>|2461<br>|0.2025<br>|5.13<br>|
|SCCY62B307SSB<br>~~Sea~~|35<br>~~a~~|62<br>~~a~~|300<br>~~a~~|+30%/-10%<br>~~a~~|2.7/2.3*<br>~~a~~|65/85*<br>~~a~~|650<br>~~a~~|6<br>~~a~~|9<br>~~a~~|109.46<br>~~a~~|1262<br>~~a~~|0.3038<br>~~a~~|3.94<br>~~a~~|
|SCCY68B407SSB<br>~~Sea~~|35<br>~~a~~|68<br>~~a~~|400<br>~~a~~|+30%/-10%<br>~~a~~|2.7/2.3*<br>~~a~~|65/85*<br>~~a~~|1000<br>~~a~~|4<br>~~a~~|5<br>~~a~~|180.00<br>~~a~~|2046<br>~~a~~|0.4050<br>~~a~~|4.74<br>~~a~~|
|**Cylindrical Lug Lead**<br>~~————————————~~||||||||||||||
|SCCZ1EB308SCB<br>~~————————————~~<br>~~ee~~|60<br>~~————————————~~<br>~~ee~~|138<br>~~————————————~~|3000<br>~~————————————~~|+30%/-10%<br>~~————————————~~|2.7/2.3*<br>~~————————————~~|65/85*<br>~~————————————~~|5200<br>~~————————————~~|0.2<br>~~————————————~~|0.29<br>~~————————————~~|2165.78<br>~~————————————~~|6033<br>~~————————————~~|3.0375<br>~~————————————~~|6.08<br>~~————————————~~|
|**Cylindrical Screw Lead**<br>~~ee~~<br>~~——————————~~||||||||||||||
|SCCZ1EB308SWB<br>~~ee~~<br>~~——————————~~|60<br>~~ee~~<br>~~——————————~~|138<br>~~——————————~~|3000<br>~~——————————~~|+30%/-10%<br>~~——————————~~|2.7/2.3*<br>~~——————————~~|65/85*<br>~~——————————~~|5200<br>~~——————————~~|0.2<br>~~——————————~~|0.29<br>~~——————————~~|2165.78<br>~~——————————~~|6033<br>~~——————————~~|3.0375<br>~~——————————~~|6.08<br>~~——————————~~|



## **QUALIFICATION TEST SUMMARY** 

|**Test**|**Test Method**|**Parameter**|**Limits**|
|---|---|---|---|
|**Life Cycle**|Capacitors are cycled between rated voltage and half-rated voltage under constant<br>current at +25°C for 500,000 cycles|Capacitance Change<br>ESR<br>Appearance|≤30% of initial spec value<br>≤2 times initial spec value<br>No remarkable defects|
|**High Temperature**<br>**Load Life**|Temperature: +65°C<br>Voltage: Rated Voltage<br>Test Duration: 2,000 hours|Capacitance Change<br>ESR<br>Appearance|≤30% of initial spec value<br>≤2 times initial spec value<br>No remarkable defects|
|**Storage Temperature**<br>**Characteristics**|Storage Duration: 2 years<br>No Load<br>Temperature: +35°C|Capacitance Change<br>ESR<br>Appearance|≤30% of initial spec value<br>≤2 times initial spec value<br>No remarkable defects|
|**Vibration Resistance**|Amplitude: 1.5mm<br>Frequency: 10 ~ 55Hz<br>Direction: X, Y, Z for 2 hours each|Capacitance Change<br>ESR<br>Appearance|≤30% of initial spec value<br>≤2 times initial spec value<br>No remarkable defects|
|**Humidity**|Voltage: Rated Voltage<br>RH: 90%<br>Temperature: +60°C<br>Test Duration: 1,500 hours|Capacitance Change<br>ESR<br>Appearance|≤30% of initial spec value<br>≤2 times initial spec value<br>No remarkable defects|



2 

050619 

## SCC Series 

## **High Capacitance Cylindrical SuperCapacitors** 

## **QUALITY AND RELIABILITY** 

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Capacitance vs. Temperature<br>**----- End of picture text -----**<br>


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200%<br>150%  a eee<br>100%  as .<br>50%  a ee<br>0%<br>-40°C   -20°C   0°C   20°C  40°C  60°C  80°C<br>Temperature (ºC)<br>Leakage Current vs. Temperature<br>700%<br>600%<br>500%<br>400%<br>300%<br>200%<br>100%<br>0%<br>-40°C   -20°C   0°C   20°C  40°C  60°C  80°C<br>Temperatue (ºC)<br>Equivalent Series Resistance vs. Temperature<br>300%    a<br>250%  —<br>200%<br>150%  OO<br>100%   ee<br>50%    a<br>0%<br>-40°C   -20°C   0°C   20°C  40°C  60°C  80°C<br>Temperature (°C)<br>Percent of 25°C Reading<br>Percent of 25°C Reading<br>Percent of 25°C Reading<br>**----- End of picture text -----**<br>


3 

011519 

## SCC Series 

## **High Capacitance Cylindrical SuperCapacitors** 

## **MECHANICAL SPECIFICATIONS** 

**Radial Lead Type 1F – 100F** 

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øD+1.0/-0mm<br>**----- End of picture text -----**<br>


|**D**<br>**(mm)**|**P**<br> **(mm)**|**d**<br> **(mm)**|
|---|---|---|
|6.3|2.3|0.6|
|8|3.5|0.6|
|10|5.0|0.6|
|12.5|5.5|0.6|
|16|7.5|0.8|
|18|8|0.8|



## **Solder Pin Type 2 pin 100F, 200F Part** 

## **Solder Pin Type 4 pin 300F, 400F Part** 

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L ±2mm<br>—— —<br>1.6±0.05mm<br>D±1.0mm<br>10±0.5mm<br>An<br>.<br>Vent   7±1.0mm   (-) Negative Polarity<br>**----- End of picture text -----**<br>


**Radial Bent Lead Type** 

## **Cylindrical Lug Type 3000F Part** 

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4mm  138±2mm  4mm<br>D1  Φ34   D2<br>Ip | (OF [te<br>M16X1.0<br>M16X1.0<br>(-) Negative Polarity  Vent   Style B (mm)<br>A1 4<br>C1 2<br>==<br>øD+1.0/-0mm<br>**----- End of picture text -----**<br>


## **Cylindrical Screw Type 3000F Part** 

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12<br>td 138±2mm<br>**----- End of picture text -----**<br>


4 

111819 

## SCC Series 

## **High Capacitance Cylindrical SuperCapacitors** 

## **SOLDERING RECOMMENDATIONS** 

When soldering SuperCapacitors to a PCB, the temperature & time that the body of the SuperCapacitor sees during soldering can have a negative effect on performance. We advise following these guidelines: 

- Do not immerse the SuperCapacitors in solder. Only the leads should come in contact with the solder. 

- Ensure that the body of the SuperCapacitor is never in contact with the molten solder, the PCB or other components during soldering. 

- Excessive temperatures or excessive temperature cycling during soldering may cause the safety vent to burst or the case to shrink or crack, potentially damaging the PCB or other components, and significantly reduce the life of the capacitor. 

## **HAND SOLDERING** 

Keep distance between the SuperCapacitor body and the tip of the soldering iron and the tip should never touch the body of the capacitor. Contact between SuperCapacitor body and soldering iron will cause extensive damage to the SuperCapacitor, and change its electrical properties. It is recommended that the soldering iron temperature should be less than 350°C, and contact time should be limited to less than 4 seconds. Too much exposure to terminal heat during soldering can cause heat to can cause heat to transfer to the body of the SuperCapacitor, potentially damaging the electrical properties of the SuperCapacitor. 

## **WAVE SOLDERING** 

Only use wave soldering on Radial type SuperCapacitors. The PCB should be preheated only from the bottom and for less than 60 seconds, with temperature at, or below, 100°C on the top side of the board for PCBs equal to or greater than 0.8 mm thick. 

|**Solder Temperature**<br>**(ºC)**|**Suggested Solder**<br>**Time(s)**|**Maximum Solder**<br>**Time(s)**|
|---|---|---|
|220|7|9|
|240|7|9|
|250|5|7|
|260|3|5|



## **REFLOW SOLDERING** 

Infrared or conveyor over reflow techniques can be used on these SuperCapacitors. Do not use a traditional reflow oven without clear rated reflow temperature for SuperCapacitors. 

5 

## SCC Series 

## **High Capacitance Cylindrical SuperCapacitors** 

## **TEST METHODS** 

## **IEC CAPACITANCE TEST METHOD** 

## **INITIAL ESR MEASUREMENT @ 25°C** 

- Capacitance is measured using a Keithley 2400 or 2602 Meter 

   - Using an Agilent 4263B LCR Meter and a Kelvin connection 

- Procedure 

   - Measure at frequency of 1000 Hz 

- Charge Capacitor to Rated Voltage at room temperature 

   - Measurement Voltage of 10mV 

- Disconnect parts from voltage to remove charging effects 

- Discharge cells with a constant current I determined by 4 * C * VR 

## **DC ESR MEASUREMENT** 

- Noting V1, t1, V2, t2  and performing the calculation for C 

- Six steps capacity and ESRDC Test Method is used as illustrated in the figure right. 

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Voltage<br>(V)<br>30 min<br>VR V<br>3 ESR Drop<br>V1<br>V2<br>t1 t2 Times (s)<br>**----- End of picture text -----**<br>


- Tests are carried out by charging and discharging the capacitor for two cycles at rated voltage and half rated voltage 

   - C = (CDC1+CDC2) / 2 

   - ESRDC = (ESRDC1 + ESRDC2) / 2 

      - Where: CDC1 = I2*(t5-t4)/(V3-V4) 

         - CDC2 = I2*(t11-t10)/V9-V10) ESRDC1 = (V5-V4)/I2 ESRDC2 = (V11-V10)/I2 I1 = I2 = 75mA/F 

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Cycle 1   Cycle 2<br>VR I1     V1 V2 V3 I1 V7 V8 V9<br>Step 2     Step 2<br>Step 4     Step 4<br>Step 3     Step 6<br>Step 3     Step 6<br>Step 1     V5 Step 1<br>V4 V6 V10 V11<br>Step 5     Step 5<br>0      I2  I2<br>t1 t2 t3 t4 t5 t6 t7 t8 t9 t10 t11 t12<br>**----- End of picture text -----**<br>


I – Discharge Current [mA], 4 * C * VR VR – Rated Voltage 

V1 – Initial Test Voltage, 80% of VR 

V2 – Final Test Voltage, 40% of VR 

t1 – Initial Test time 

t2 – Final Test time 

C = I * (t2 – t1) / (V1 – V2) 

## **DCL MEASUREMENT @ 25°C** 

- DCL is measured using a Multimeter with high internal impedance across a resistor 

   - Charge Capacitor to Rated Voltage at room temperature for 72 Hours 

## **MAXIMUM OPERATING CURRENT** 

- Disconnect parts from Voltage by opening switch 1 (Stabilize for 10 Min) 

   - This is the maximum current when capacitor temperature rise of the capacitor during its operation is less than 15°C 

- Measure Voltage across a known Valued Resistor (1K Ohm) 

• Calculate DCL = V/R 

## **MAXIMUM PEAK CURRENT** 

- This is the maximum current in less than 1 sec 

## **WATT DENSITY** 

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Multimeter<br>+ -<br>+<br>DC   1k Ω<br>Power<br>Supply     1<br>- o t<br>B er<br>**----- End of picture text -----**<br>


- Watt Density = (0.12*V² / RDC) / mass 

## **ENERGY DENSITY** 

- Energy density = (½ CV²) / (3600*mass) 

6 

011519 

## SCC Series 

## **High Capacitance Cylindrical SuperCapacitors** 

## **POLARITY / REVERSE VOLTAGE** 

For product consistency and optimum performance, it is recommended that the capacitor be connected with polarity indicated. Reversing polarity could result in permanent damage to the circuit including much higher leakage current for a short duration of time and the life time of the supercapacitors will be reduced. 

## **LIFE TIME AND TEMPERATURE PERFORMANCE** 

The life of a SuperCapacitor is impacted by a combination of operating voltage and the operating temperature according to the following equation: 

time to failure, t ∞ Vn * exp (-Q / k*T) …………..(1) where V is the voltage of operation, Q is the activation energy in electron volts (eV), k is the Boltzmann’s constant in eV and T is the operating temperature in °K (where K is in degrees Kelvin). Typical values for the voltage exponent, n, is between 2.5 - 3.5, and Q is between 1.0 - 1.2 eV in the normal operating temperature range of 40° to 65°C. 

The industry standard for SuperCapacitor end of life is when the equivalent series resistance, ESR, increases to 200% of the original value and the capacitance drops by 30%. Typically a super-capacitance shows an initial change in the ESR value and then levels off. If the capacitors are exposed to excessive temperatures the ESR will show a continuous degradation. In the extreme case, if the temperatures or voltages are substantially higher, than the rated voltage, this will lead to cell leakage or gas leakage and the product will show a faster change in the ESR which may increase to many times the original value. 

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Expected Lifetime at Various Voltages<br>SCC Series, 2.7V Rated<br>90<br>100%Vrated<br>80  [Se (2.7V)<br>90%Vrated<br>70  SSS 80%Vrated  oe<br>70%Vrated<br>60<br>CSS<br>50  CCC TE |<br>40  ECCI S S SSS PTCO T<br>30  ECM ECE Pcl<br>20  ECE<br>Eo Eo<br>10  ECE<br>Ec Eo<br>0  EEE<br>Ec Eo<br>0.1  1.0  10.0  100.0<br>MTTF (years)<br>Expected Lifetime at Various Voltages<br>SCC Series, 2.3V Rated<br>90<br>100%Vrated<br>80  CA (2.3V)<br>90%Vrated<br>TSS 4<br>70  80%Vrated<br>70%Vrated<br>60  CC SCI Tle |<br>EESSS<br>50<br>FI ESSERE<br>40<br>30  fe CSS<br>EE EE Eo<br>20 10  CEI EE Eo<br>0<br>fe<br>0.1  1.0  10.0  100.0<br>MTTF (years)<br>Temperature (°C)<br>Temperature (°C)<br>**----- End of picture text -----**<br>


7 

042619 

## SCC Series 

## **High Capacitance Cylindrical SuperCapacitors** 

## **SAFETY RECOMMENDATIONS** 

## **WARNINGS** 

- To Avoid Short Circuit, after usage or test, SuperCapacitor voltage needs to discharge to ≤ 0.1V 

- Do not Apply Overvoltage, Reverse Charge, Burn or Heat Higher than 150°C,  explosion-proof valve may break open 

- Do not Press, Damage or disassemble the SuperCapacitor, housing could heat to high temperature causing Burns 

- If you observe Overheating or Burning Smell from the capacitor disconnect Power immediately, and do not touch 

## **EMERGENCY APPLICATIONS** 

- If Housing is Leaking: 

   - Skin Contact: Use soap and water thoroughly to wash the area of the skin 

   - Eye Contact: Flush with flowing water or saline, and immediately seek medical treatment 

   - Ingestion: Immediately wash with water and seek medical treatment 

## **REGULATORY** 

- UL 810A 

- RoHS Compliant 

- Reach Compliant / Halogen Free 

## **STORAGE** 

- Capacitors may be stored within the operating temperature range of the capacitor 

- Lower storage temperature is preferred as it extends the shelf life of the capacitor 

- Do Not Store the SuperCapacitors in the following Environments 

   - High Temperature / High Humidity environments >40°C / 70% RH 

   - Direct Sunlight 

   - In direct contact with water, salt oil or other chemicals 

   - In direct contact with corrosive materials, acids, alkalis, or toxic gases 

   - Dusty environment 

## **TRANSPORTATION** 

- In environment with shock and vibration conditions 

Not subjected to US DOT or IATA regulations UN3499, <10Wh, Non-Hazardous Goods International shipping description – 

“Electronic Products – Capacitor” 

_Licensed by CAP-XX_ 

8 

011519 



## Links

- [View this product on Novapart](https://novapart.co/products/SCCU25B256SRB/supercapacitor-edlc-25-f-27-v-radial-leaded-10-30)
- [Request a quote for this part](https://novapart.co/quote/)
- [Supplier page](https://es.farnell.com/kyocera-avx/sccu25b256srb/cap-25f-2-7v-20-super-cap-radial/dp/2696616)
---

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