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MP1471 Datasheet(PDF) 12 Page - Monolithic Power Systems |
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MP1471 Datasheet(HTML) 12 Page - Monolithic Power Systems |
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12 / 17 page ![]() MP1471 – SYNCHRONOUS, STEP-DOWN CONVERTER WITH INTERNAL MOSFETS MP1471 Rev. 1.01 www.MonolithicPower.com 12 8/27/2013 MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2013 MPS. All Rights Reserved. APPLICATION INFORMATION Setting the Output Voltage The external resistor divider sets the output voltage. The feedback resistor R1 also sets the feedback-loop bandwidth through the internal compensation capacitor (see the Typical Application circuit). Choose R1 around 10kΩ, and R2 by: OUT R1 R2 V 1 0.8V = − Use a T-type network for when VOUT is low. Figure 6: T-Type Network Table 1 lists the recommended T-type resistors value for common output voltages. Table 1 —Resistor Selection for Common Output Voltages VOUT (V) R1 (kΩ) R2 (kΩ) Rt (kΩ) LOUT (μH) COUT (μF) 1.05 10 32.4 150 2.2 44 1.2 20.5 41.2 120 2.2 44 1.8 40.2 32.4 75 3.3 44 2.5 40.2 19.1 59 4.7 44 3.3 40.2 13 40.2 6.8 44 5 40.2 7.68 24.9 6.8 44 Selecting the Inductor Use a 1µH-to-10µH inductor with a DC current rating of at least 25% percent higher than the maximum load current for most applications. For highest efficiency, select an inductor with a DC resistance less than 15mΩ. For most designs, derive the inductance value from the following equation. OUT IN OUT 1 IN L OSC V(V V ) L VI f ×− = ×Δ × Where ΔIL is the inductor ripple current. Choose an inductor current approximately 30% of the maximum load current. The maximum inductor peak current is: 2 I I I L LOAD ) MAX ( L Δ + = Under light-load conditions (below 100mA), use a larger inductance for improved efficiency. Selecting the Input Capacitor The input current to the step-down converter is discontinuous, and therefore requires a capacitor to both supply the AC current to the step-down converter and maintain the DC input voltage. Use low ESR capacitors for the best performance, such as ceramic capacitors with X5R or X7R dielectrics of their low ESR and small temperature coefficients. A 22µF capacitor is sufficient for most applications. The input capacitor (C1) requires an adequate ripple current rating because it absorbs the input switching. Estimate the RMS current in the input capacitor with: ⎟ ⎟ ⎠ ⎞ ⎜ ⎜ ⎝ ⎛ × − × = IN OUT IN OUT LOAD 1 C V V 1 V V I I The worst-case condition occurs at VIN = 2VOUT, where: 2 I I LOAD 1 C = For simplification, choose an input capacitor with an RMS current rating greater than half the maximum load current. The input capacitor can be electrolytic, tantalum, or ceramic. Place a small, high-quality, ceramic capacitor (0.1μF) as close to the IC as possible when using electrolytic or tantalum capacitors. When using ceramic capacitors, make sure that they have enough capacitance to provide sufficient charge to prevent excessive input voltage ripple. Estimate the input voltage ripple caused by the capacitance with: LOAD OUT OUT IN IN SIN IV V V1 fC1 V V ⎛⎞ Δ= × × − ⎜⎟ × ⎝⎠ Selecting the Output Capacitor The output capacitor (C2) maintains the DC output voltage. Use ceramic, tantalum, or low- ESR electrolytic capacitors. Use low ESR capacitors to limit the output voltage ripple. Estimate the output voltage ripple with: |
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