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ADP3170 датащи(PDF) 9 Page - Analog Devices |
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ADP3170 датащи(HTML) 9 Page - Analog Devices |
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9 / 16 page ![]() REV. 0 ADP3170 –9– Designing an Inductor Once the inductance is known, the next step is either to design an inductor or find a standard inductor that comes as close as possible to meeting the overall design goals. The first decision in designing the inductor is to choose the core material. There are several possibilities for providing low core loss at high fre- quencies. Two examples are the powder cores (e.g., Kool-M® from Magnetics, Inc.) and the gapped soft ferrite cores (e.g., 3F3 or 3F4 from Philips). Low frequency powdered iron cores should be avoided due to their high core loss, especially when the inductor value is relatively low and the ripple current is high. Two main core types can be used in this application. Open magnetic loop types, such as beads, beads on leads, and rods and slugs, provide lower cost but do not have a focused mag- netic field in the core. The radiated EMI from the distributed magnetic field may create problems with noise interference in the circuitry surrounding the inductor. Closed-loop types, such as pot cores, PQ, U, and E cores, or toroids, cost more, but have much better EMI/RFI performance. A good compromise between price and performance are cores with a toroidal shape. There are many useful references for quickly designing a power inductor. Table II gives some examples. Table II. Magnetics Design References Magnetic Designer Software Intusoft (http://www.intusoft.com) Designing Magnetic Components for High-Frequency DC-DC Converters McLyman, Kg Magnetics ISBN 1-883107-00-08 20 19 18 17 16 15 14 13 12 11 1 2 3 4 5 6 7 8 9 10 FB SD REF PWRGD CT COMP PGND DRVH DRVL LRDRV LRFB VCC VID3 GND VID2 VID1 VID0 VID25 CS+ CS– U1 ADP3170 FROM CPU C19 150pF COC 2.7nF RB 30.1k 1% RA 13.7k 1% C11 1nF R4 220 R5 220 C8 100pF C1 1000 F C2 1000 F C3 1000 F C4 1000 F C5 1000 F L1 1.7 H C7 100nF C6 4.7nF L1 1 H Q1 FDB7045L C12 22 F Q2 FDB7045L C13 C14 C15 C16 C17 C18 C19 C20 D1 MBR052LT1 D2 MBR052LT1 5V 12V 5V SB VTT PWRGD CLK R1 1k VCC(CORE) 1.05V – 1.825V 23A C23 220 F VCC(CORE) RTN 1.8V SB 1.8V, 200mA CORE PWRGD TO CPU 1000 F 8 RUBYCON ZA SERIES 24m ESR (EACH) 5V SB Q6 IRL3103 R6 2.5m C21 1 F C22 68pF R7 10k Figure 3. 24 A VRM 8.5-Compliant CPU Supply |
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