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FPV1006-150-R 数据表(PDF) 37 Page - Vicor Corporation |
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FPV1006-150-R 数据表(HTML) 37 Page - Vicor Corporation |
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37 / 41 page ![]() Cool-Power® ZVS Switching Regulators Rev 2.5 Page 37 of 41 06/2017 PI33xx-x0 Layout Guidelines To optimize maximum efficiency and low noise performance from a PI33xx-x0 design, layout considerations are necessary. Reducing trace resistance and minimizing high current loop returns along with proper component placement will contribute to optimized performance. A typical buck converter circuit is shown in Figure 63. The potential areas of high parasitic inductance and resistance are the circuit return paths, shown as LR below. The path between the COUT and CIN capacitors is of particular importance since the AC currents are flowing through both of them when Q1 is turned on. Figure 64, schematically, shows the reduced trace length between input and output capacitors. The shorter path lessens the effects that copper trace parasitics can have on the PI33xx-x0 performance. When Q1 is on and Q2 is off, the majority of CIN’s current is used to satisfy the output load and to recharge the COUT capacitors. When Q1 is off and Q2 is on, the load current is supplied by the inductor and the COUT capacitor as shown in Figure 65. During this period CIN is also being recharged by the VIN. Minimizing CIN loop inductance is important to reduce peak voltage excursions when Q1 turns off. Also, the difference in area between the CIN loop and COUT loop is vital to minimize switching and GND noise. The recommended component placement, shown in Figure 66, illustrates the tight path between CIN and COUT (and VIN and VOUT) for the high AC return current. This optimized layout is used on the PI33xx-x0 evaluation board. Figure 67 details the recommended receiving footprint for PI33xx-x0 10mm x 14mm package. All pads should have a final copper size of 0.55mm x 0.55mm, whether they are solder-mask defined or copper defined, on a 1mm x 1mm grid. All stencil openings are 0.45mm when using either a 5mil or 6mil stencil. C OUT C IN V IN Figure 63 — Typical Buck Converter C OUT V IN C IN Q2 Q1 IND Figure 64 — Current flow: Q1 closed C OUT V IN C IN Figure 65 — Current flow: Q2 closed C OUT C IN V IN V OUT GND GND VSW Figure 66 — Recommended component placement and metal routing Murata Part Number Description GRM188R71C105KA12D 1μF 16V 0603 X7R GRM319R71H104KA01D 0.1μF 50V 1206 X7R GRM31CR60J107ME39L 100μF 6.3V 1206 X5R GRM31CR71H475KA12K 4.7μF 50V 1206 X7R GRM31CR61A476ME15L 47μF 10V 1206 X5R GRM31CR61E226KE15L 22μF 25V 1206 X5R Table 6 — Capacitor manufacturer part numbers |
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