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RT9212PC Datasheet(PDF) 12 Page - Richtek Technology Corporation |
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RT9212PC Datasheet(HTML) 12 Page - Richtek Technology Corporation |
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12 / 14 page ![]() RT9212 Preliminary DS9212-05 March 2007 12 www.richtek.com Modulator Frequency Equations The modulator transfer function is the small-signal transfer function of VOUT/VE/A. This transfer function is dominated by a DC gain and the output filter (LO and CO), with a double pole frequency at FLC and a zero at FESR. The DC gain of the modulator is the input voltage (VIN) divided by the peak- to-peak oscillator voltage VRAMP. The first step is to calculate the complex conjugate poles contributed by the LC output filter. The output LC filter introduces a double pole, −40dB/decade gain slope above its corner resonant frequency, and a total phase lag of 180 degrees. The Resonant frequency of the LC filter expressed as follows : The next step of compensation design is to calculate the ESR zero. The ESR zero is contributed by the ESR associated with the output capacitance. Note that this requires that the output capacitor should have enough ESR to satisfy stability requirements. The ESR zero of the output capacitor expressed as follows : O O P(LC) C L 2 1 F × × = π ESR C 2 1 F O Z(ESR) × × = π ) C // (C R 2 1 F C R 2 1 F 0 F 2 1 2 P1 2 2 Z1 P1 × = × × = = π π C2 C1 R2 R1 COMP1 VREF EA + - FB1 RT9212 VOUT Zc Zf Rf Figure 2 Figure 3 shows the DC-DC converter's gain vs. frequency. The compensation gain uses external impedance networks ZC and ZF to provide a stable, high bandwidth loop. High crossover frequency is desirable for fast transient response, but often jeopardize the system stability. In order to cancel one of the LC filter poles, place the zero before the LC filter resonant frequency. In the experience, place the zero at 75% LC filter resonant frequency.Crossover frequency should be higher than the ESR zero but less than 1/5 of the switching frequency. The second pole be place at half the switching frequency. + - Zc Zf VREF + - Lo VRAMP PWM Co ESR Vin Compensator PWM Comparator Vout Figure 1 Compensation Frequency Equations The compensation network consists of the error amplifier and the impedance networks ZC and ZF as Figure 2 shows. Frequency 10Hz 100Hz 1.0KHz 10KHz 100KHz 1.0MHz vdb(vo) vdb(comp2) vdb(lo) -40 0 40 80 -60 10 100 1k 10k 100k 1M 80 40 0 20 60 -20 -40 -60 Loop Gain Compensation Gain Modulator Gain Frequency (Hz) Figure 3 |
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