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FS0H474ZF датащи(PDF) 35 Page - NEC |
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FS0H474ZF датащи(HTML) 35 Page - NEC |
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35 / 39 page ![]() ●All specifications in this catalog and production status of products are subject to change without notice. Prior to the purchase, please contact NEC TOKIN for updated product data. ●Please request for a specification sheet for detailed product data prior to the purchase. ●Before using the product in this catalog, please read "Precautions" and other safety precautions listed in the printed version catalog. 2010.11.8 9565SCAVOL12E Super Capacitors Vol.12 35 9. Measurement Conditions VC RC EO Swich C + – EO: 3.0 (V) … Product with maximum operating voltage 3.5 V 5.0 (V) … Product with maximum operating voltage 5.5 V 6.0 (V) … Product with maximum operating voltage 6.5 V 10.0 (V) … Product with maximum operating voltage 11 V 12.0 (V) … Product with maximum operating voltage 12 V τ : Time from start of charging until Vc becomes 0.632E0 (V) (sec) RC:See table below (Ω). Capacitance: C = (F) (9) τ RC Capacitance (Discharge System) In the diagram below, charging is performed for a duration of 30 minutes, once the voltage of the condensor terminal reaches 5.5 V. Then, use a constant current load device and measure the time for the terminal voltage to drop from 3.0 to 2.5 V upon discharge at 0.22 mA for 0.22 F, for example, and calculate the static capacitance according to the equation shown below. Note: The current value is 1 mA discharged per 1F. A V CR 5.5V SW 0.22mA(I) 30 min. T1 T2 V1 : 2.5V V1 : 3.0V 5.5V V1 V2 Duration (sec.) Table 3 Capacitance measurement Capactance:C= (F) I×(T2−T1) V1−V2 (1) Capacitance ( Charge System ) Capacitance is calculated from expression (9) by measuring the charge time constant ( τ ) of the capacitor (C). Prior to measurement, short between both pins of the capacitor for 30 minutes or more to let it discharge. In addition, follow the indication of the product when determining the polarity of the capacitor during charging. FA FE FS FY FR FM, FME FMR, FML FMC FG FGR FGH FT FC, FCH FCS FYD FYH FYL 0.010F – – – – – 5000 Ω – 5000 Ω – 5000 Ω ––– 0.022F 1000 Ω – 1000 Ω 2000 Ω 2000 Ω 2000 Ω 2000 Ω 2000 Ω – 2000 Ω –– Discharge 0.033F – – – –––– Discharge ––––– 0.043F – – – –––– – –––– Discharge 0.047F 1000 Ω 1000 Ω 1000 Ω 2000 Ω 1000 Ω 2000 Ω 1000 Ω 2000 Ω 1000 Ω 2000 Ω ––– 0.068F – – – –––– – –––– Discharge 0.10F 510 Ω 510 Ω 510 Ω 1000 Ω 510 Ω – 1000 Ω 1000 Ω 1000 Ω 1000 Ω Discharge 510 Ω Discharge 0.22F 200 Ω 200 Ω 200 Ω 510 Ω 510 Ω – 510 Ω 0H: Discharge 0V: 1000 Ω – 1000 Ω Discharge 200 Ω Discharge 0.33F – – – –––– – Discharge –––– 0.47F 100 Ω 100 Ω 100 Ω 200 Ω 200 Ω – 200 Ω – – 1000 Ω Discharge 100 Ω Discharge 1.0F 51 Ω 51 Ω 100 Ω 100 Ω 100 Ω – 100 Ω – – 510 Ω Discharge 100 Ω Discharge 1.4F – – – 200 Ω ––– – ––––– 1.5F – 51 Ω ––––– – – 510 Ω ––– 2.2F – – – 100 Ω – – – – – 200 Ω – 51 Ω – 3.3F – – – –––– – ––– 51 Ω – 4.7F – – – –––– – – 100 Ω ––– 5.0F – – 100 Ω –––– – ––––– 5.6F – – – –––– – ––– 20 Ω – *Capacitance values according to the constant current discharge method. |
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