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LTC1530CS8 Datasheet(PDF) 15 Page - Linear Technology |
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LTC1530CS8 Datasheet(HTML) 15 Page - Linear Technology |
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15 / 24 page ![]() 15 LTC1530 Although a mathematical approach to frequency compen- sation can be used, the added complication of input and/ or output filters, unknown capacitor ESR, and gross operating point changes with input voltage, load current variations and frequency of operation all suggest a more practical empirical method. This can be done by injecting a transient current at the load and using an RC network box to iterate toward the final compensation values or by obtaining the optimum loop response using a network analyzer to find the actual loop poles and zeros. Table 2 shows the suggested compensation components for 5V input applications based on the inductor and output capacitor values. The values were calculated using mul- tiple paralleled 330 µF AVX TPS series surface mount tantalum capacitors for the output capacitor. The opti- mum component values might deviate from the suggested values slightly because of board layout and operating condition differences. Table 2. Suggested Compensation Network for a 5V Input Application Using Multiple Paralleled 330 µF AVX TPS Output Capacitors for 2.5V Output LO (µH) CO (µF) RC (kΩ)CC (µF) C1 (pF) 1 990 1.3 0.022 1000 1 1980 2.7 0.022 470 1 4950 6.8 0.01 220 2.7 990 3.6 0.022 330 2.7 1980 7.5 0.01 220 2.7 4950 18 0.01 68 5.6 990 7.5 0.01 220 5.6 1980 15 0.01 100 5.6 4950 36 0.0047 47 An alternate output capacitor is the Sanyo MV-GX series. Using multiple paralleled 1500 µF Sanyo MV-GX capaci- tors for the output capacitor, Table 3 shows the suggested compensation components for 5V input applications based on the inductor and output capacitor values. Table 3. Suggested Compensation Network for a 5V Input Application Using Multiple Paralleled 1500 µF SANYO MV-GX Output Capacitors for 2.5V Output LO (µH) CO (µF) RC (kΩ)CC (µF) C1 (pF) 1 4500 3 0.022 470 1 6000 4 0.022 330 1 9000 6 0.022 220 2.7 4500 8.2 0.022 150 2.7 6000 11 0.01 100 2.7 9000 16 0.01 100 5.6 4500 16 0.01 100 5.6 6000 22 0.01 68 5.6 9000 33 0.01 47 Note: For different values of VOUT, multiply the RC value by VOUT/2.5 and multiply the CC and C1 values by 2.5/VOUT. This maintains the same crossover frequency for the closed-loop transfer function. C1 RC CC LTC1530 VOUT COMP 1530 F08a + – ERR BG 3 4 Figure 8a. Compensation Pin Hook-Up FREQUENCY 1530 F08b –20dB/DECADE fSW = LTC1530 SWITCHING FREQUENCY fCO = CLOSED-LOOP CROSSOVER FREQUENCY fZ fLC fESR fCO fP Figure 8b. Bode Plot of the LTC1530 Overall Transfer Function APPLICATIO S I FOR ATIO |
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