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AN3027 датащи(PDF) 11 Page - STMicroelectronics |
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AN3027 датащи(HTML) 11 Page - STMicroelectronics |
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11 / 41 page ![]() AN3027 Designing a TM PFC Doc ID 16134 Rev 4 11/41 3.3.2 Input capacitor The input high-frequency filter capacitor (Cin) has to attenuate the switching noise due to the high-frequency inductor current ripple (twice the average line current, Figure 3). The worst conditions occur on the peak of the minimum rated input voltage. The maximum high-frequency voltage ripple across Cin is usually imposed between 5% and 20% of the minimum rated input voltage. This is expressed by a coefficient r (= 0.05, 0.2) as an input design parameter: Equation 12 In real conditions the input capacitance is designed to take the EMI filter into account and to have a tolerance on the component of about 5% -10% (typ. for polyester capacitors). A commercial capacitor of Cin = 0.47 µF has been selected. Of course a bigger capacitor benefits the EMI but hurts the THD, especially at high mains. Therefore a compromise must be found between these two parameters. A good quality film capacitor for this component must be selected in order to have an effective filter. 3.3.3 Output capacitor The selection of the output bulk capacitor (Co) depends on the DC output voltage (4), the allowed maximum output voltage (7) and the converter output power (3). The 100/120 Hz (twice the mains frequency) voltage ripple ( ∆Vout = peak-to-peak ripple value) is a function of the capacitor impedance and the peak capacitor current: Equation 13 With a low ESR capacitor the capacitive reactance is dominant, therefore: Equation 14 ∆Vout is usually selected in the range of 1.5% of the output voltage. Although ESR usually does not affect the output ripple, it should be taken into account for calculating the power losses. The total RMS capacitor ripple current, including mains frequency and switching frequency components, is: Equation 15 ● Ripple voltage coefficient (%): (13) 15 . 0 r = min min sw in in VAC r f 2 I C ⋅ ⋅ ⋅ π = F 359 . 0 Vac 90 15 . 0 kHz 40 2 A 19 . 1 C in µ = ⋅ ⋅ ⋅ π = 2 2 O l out out ESR ) C f 2 2 ( 1 I 2 V + ⋅ ⋅ π ⋅ ⋅ = ∆ out out MAINS out out l out O V V f 2 P V f 2 I C ∆ ⋅ ⋅ ⋅ π = ∆ ⋅ ⋅ π ≥ F 5 . 42 V 20 V 400 Hz 47 2 W 100 C O µ = ⋅ ⋅ ⋅ π ≥ 2 out rms 2 Crms I ID I − = () ( ) A 67 . 0 A 25 . 0 A 72 . 0 I 2 2 Crms = − = |
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