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CSR33B565JS 数据表(PDF) 77 Page - Kemet Corporation |
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CSR33B565JS 数据表(HTML) 77 Page - Kemet Corporation |
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77 / 84 page ![]() 9. WORKING VOLTAGE This is the maximum recommended peak DC operat- ing voltage for continuous duty at or below 85°C without DC voltage surges or AC ripple superimposed. No voltage derating is required below 85°C. Capacitors may be oper- ated to 125°C with working voltage linearly derated to 2/3 of the 85°C rating at 125°C as shown in Figure 6. 10. SURGE VOLTAGE Surge voltage is defined as the maximum voltage to which the capacitor should be subjected under transient conditions, including peak AC ripple and all DC transients. TABLE 1 Surge Voltage Ratings A typical surge voltage test is performed at +85°C with the applicable surge voltage per Table 1. The surge voltage is applied for 1000 cycles of 30 seconds on volt- age through a 33 ohm series resistor and 30 seconds off voltage with the capacitor discharged through a 33 ohm resistor. Upon completing the test, the capacitors are allowed to stabilize at room temperature. Capacitance, DF, and DCL are then tested: 1. The DCL should not exceed the initial 25°C limit. 2. The capacitance should be within ±10% of initial value. 3. The DF should not exceed the initial 25°C limit. 11. REVERSE VOLTAGE Although these are polar capacitors, some degree of transient voltage reversal is permissible, as seen below. The capacitors should not be operated continuously in reverse mode, even within these limits. TABLE 2 Reverse Voltage Ratings 12. EQUIVALENT SERIES RESISTANCE (ESR) Equivalent Series Resistance (ESR) is the preferred high-frequency statement of the resistance unavoidably appearing in these capacitors. ESR is not a pure resis- tance, and it decreases with increasing frequency. Typical ESR limits are established in each specific product series. However, the ESR limits provided are for reference only, and are not necessarily the actual value that a particular Series product will attain. Total impedance of the capacitor is the vector sum of capacitive reactance (X C) and ESR, below resonance; above resonance total impedance is the vector sum of inductive reactance (X L) and ESR. To understand the many elements of a capacitor, see Figure 8. A capacitor is a complex impedance consisting of many series and parallel elements, each adding to the complexity of the measurement system. L — Represents lead wire and construction induc- tance. In most instances (especially in solid tantalum and ® KEMET APPLICATION NOTES FOR TANTALUM CAPACITORS KEMET Electronics Corporation, P.O. Box 5928, Greenville, S.C. 29606 (864) 963-6300 77 -75 Figure 6. Temperature - °C 150 125 100 75 50 25 0 -50 -25 0 +25 +50 +75 +100 +125 Working Voltage Change with Temperature DC Working 15/ Voltage @ 85°C 2 3 4 6 10 16 20 25 35 50 60 75 100 125 Surge Voltage @ 85°C 2.6 4 5.3 8 13 20 26 33 46 65 78 98 130 140 Percentage of Temperature, °C. Rated Voltage +25 15 +85 5 +125 1 XC ESR δ θ Ζ Figure 7a Total Impedance of the Capacitor Below Resonance XC = 2 πfC 1 ohm where: f = frequency, Hertz C = capacity, Farad XL ESR δ θ Ζ Figure 7b Total Impedance of the Capacitor Above Resonance XL = 2πfL where: f = frequency, Hertz L = inductance, Henries L RS C RL Cd Rd Figure 8. The Real Capacitor |
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