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MIC24045 датащи(PDF) 33 Page - Microchip Technology |
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MIC24045 датащи(HTML) 33 Page - Microchip Technology |
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33 / 46 page ![]() 2016 Microchip Technology Inc. DS20005568A-page 33 MIC24045 For polarized output capacitor, compensator pole placement at the ESR zero frequency is achieved, as shown in Equation 7-20 below: EQUATION 7-20: For ceramic output capacitor, compensator pole place- ment at N × fXO (N 5, N × fXO < fS) is achieved, as detailed in Equation 7-21: EQUATION 7-21: 7.8 Output Voltage Soft-Start Rate The MIC24045 features internal, I2C programmable soft-start, such that the output voltage can be smoothly increased to the target regulation voltage. The soft-start rate given in the Electrical Characteristics refers to the error amplifier reference, and therefore the effective soft-start rate value seen at the output of the module has to be scaled according to the internal feedback divider attenuation values listed in Table 7-2. To calcu- late the effective output voltage soft-start slew rate SS_SROUT, based on the particular output voltage set- ting and the reference soft-start slew rate SS_SRx (x = 0, 1, 2, 3 depending on selection), use the follow- ing formula: EQUATION 7-22: 7.9 Minimum TON and Minimum TOFF Limitations The valley current-mode control method utilized in the MIC24045 allows very small minimum controllable ON time (around 26 ns), so that it is possible to convert from 19V down to very low voltages at high frequency. Note that the high-side current limit circuit may not be able to detect an overcurrent event if the ON time is below the high side switch current limit leading edge blanking time (LEB, see Electrical Characteristics). Conversely, some minimum OFF time is needed for valley current-mode modulator operation. This TOFF(MIN) specification (see Electrical Characteristics) may dictate a limit on the maximum attainable output voltage for a given VIN voltage. The maximum attainable output voltage (at no load) is calculated as follows: EQUATION 7-23: It is advisable to use a safe headroom margin against the calculated value of VOUT,max for DC load and good dynamic performance. C C2 1 R C1 C OUT ESR ------------------------------- 1 C C1 ---------- – ------------------------------------------------ = C C2 1 2 R C1 N f XO 1 C C1 ---------- – ---------------------------------------------------------------- = SS_SR OUT A SS_SRx = where: A = amplification (see Table 7-2 for A values.) V OUT,max V IN 1f S T OFF(MIN) – = |
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