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MP1570DN датащи(PDF) 8 Page - Monolithic Power Systems |
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MP1570DN датащи(HTML) 8 Page - Monolithic Power Systems |
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8 / 11 page ![]() MP1570 – 3A, 23V, 340KHz SYNCHRONOUS RECTIFIED, STEP-DOWN CONVERTER MP1570 Rev. 1.5 www.MonolithicPower.com 8 1/31/2006 MPS Proprietary Information. Unauthorized Photocopy and Duplication Prohibited. © 2006 MPS. All Rights Reserved. TM The system may have another zero of importance, if the output capacitor has a large capacitance and/or a high ESR value. The zero, due to the ESR and capacitance of the output capacitor, is located at: ESR ESR R 2 C 2 1 f × × π = In this case (as shown in Figure 2), a third pole set by the compensation capacitor (C6) and the compensation resistor (R3) is used to compensate the effect of the ESR zero on the loop gain. This pole is located at: 3 R 6 C 2 1 f 3 P × × π = The goal of compensation design is to shape the converter transfer function to get a desired loop gain. The system crossover frequency where the feedback loop has the unity gain is important. Lower crossover frequencies result in slower line and load transient responses, while higher crossover frequencies could cause system unstable. A good rule of thumb is to set the crossover frequency to approximately one-tenth of the switching frequency. Switching frequency for the MP1570 is 340KHz, so the desired crossover frequency is 34KHz. Table 3 lists the typical values of compensation components for some standard output voltages with various output capacitors and inductors. The values of the compensation components have been optimized for fast transient responses and good stability at given conditions. Table 3—Compensation Values for Typical Output Voltage/Capacitor Combinations VOUT L C2 R3 C3 C6 1.8V 4.7µH 100µF Ceramic 5.6kΩ 3.3nF None 2.5V 4.7- 6.8µH 47µF Ceramic 4.7kΩ 4.7nF None 3.3V 6.8- 10µH 22µFx2 Ceramic 5.6kΩ 3.3nF None 5V 10- 15µH 22µFx2 Ceramic 7.5kΩ 3.3nF None 12V 15- 22µH 22µFx2 Ceramic 10kΩ 1.2nF None 1.8 4.7µH 100µF SP-CAP 10kΩ 2.2nF 100pF 2.5V 4.7- 6.8µH 47µF SP-CAP 5.6kΩ 3.3nF None 3.3V 6.8- 10µH 47µF SP-CAP 6.8kΩ 2.2nF None 5V 10- 15µH 47µF SP CAP 10kΩ 2.2nF None 2.5V 4.7- 6.8µH 560µF Al. 30mΩ ESR 10kΩ 7.5nF 1.5nF 3.3V 6.8- 10µH 560µF Al 30mΩ ESR 10kΩ 10nF 1.5nF 5V 10- 15µH 470µF Al. 30mΩ ESR 15kΩ 7.5nF 1nF 12V 15- 22µH 220µF Al. 30mΩ ESR 15kΩ 10nF 390pF To optimize the compensation components for conditions not listed in Table 2, the following procedure can be used. 1. Choose the compensation resistor (R3) to set the desired crossover frequency. Determine the R3 value by the following equation: FB OUT CS EA C V V G G f 2 C 2 3 R × × × × π = Where fC is the desired crossover frequency, 34KHz. |
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