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SC2545TSTRT датащи(PDF) 10 Page - Semtech Corporation |
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SC2545TSTRT датащи(HTML) 10 Page - Semtech Corporation |
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10 / 24 page ![]() 10 ã 2005 Semtech Corp. www.semtech.com SC2545 POWER MANAGEMENT The output capacitor provides output current filtering in steady state and serves as a reservoir during load transient. The output capacitor can be modeled as an ideal capacitor in series with its parasitic ESR and ESL as shown in Figure 4. Figure 4. An equivalent circuit of output. If the current through the branch is i b(t), the voltage across the terminals will then be W L 5 GW W GL / GW W L & 9 W Y E HVU W E HVO E R R R ³ This basic equation illustrates the effects of ESR, ESL, and C o on the output voltage. /HVO &R 5HVU General Design Procedure for a Step-down Power Converter Selection criterias and design procedures for the follow- ing parameters are described: 1) Output inductor (L) type and value 2) Output capacitor (C o) type and value 3) Input capacitor (C in) type and value 4) Power MOSFETs 5) Current sensing and limiting circuit 6) Voltage sensing circuit 7) Loop compensation network The following step-down converter specifications are needed: Input voltage range: V in,min and Vin,max Input voltage ripple (peak-to-peak): DV in Output voltage: V o Output voltage accuracy: e Output voltage ripple (peak-to-peak): DV o Nominal output (load) current: I o Maximum output current limit: I o,max Output (load) current transient slew rate: dI o (A/ s) Circuit efficiency: K Inductor (L) and Ripple Current Both step-down controllers in the SC2545 operate in synchronous continuous-conduction mode (CCM) regardless of the output load level. The output inductor selection/design is based on the output DC and transient requirements. Both output current and voltage ripples are reduced with larger inductance but it takes longer to change the inductor current during load transients. Conversely smaller inductance results in lower DC copper losses but the AC core losses (flux swing) and the winding AC resistance losses are higher. A compromise is to choose the inductance such that peak-to-peak inductor ripple-current is 20% to 30% of the rated output load current. Assuming that the inductor current ripple (peak-to-peak) value is *I o, the inductance value will then be The peak current in the inductor becomes (1+ /2)*Io and the RMS current is The followings are to be considered when choosing inductors. a) Inductor core material: For higher efficiency applications above 300 kHz, ferrite, Kool-Mu and polypermalloy materials should be used. Low-cost powdered iron cores can be used for cost sensitive- applications below 300 kHz but with attendant higher core losses. b) Select inductance value: Sometimes the calculated inductance value is not available off-the-shelf. The designer can choose the adjacent (larger) standard inductance value. The inductance varies with temperature and DC current. It is a good engineering practice to re-evaluate the resultant current ripple at the rated DC output current. c) Current rating: The saturation current of the inductor should be at least 1.5 times of the peak inductor current under all conditions. Output Capacitor (C o) and Vout Ripple , , R UPV / G I , ' 9 / V R R G G G Applications Information (Cont.) |
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