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ADP2503ACPZ-4.2-R71 Datasheet(PDF) 12 Page - Analog Devices |
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ADP2503ACPZ-4.2-R71 Datasheet(HTML) 12 Page - Analog Devices |
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12 / 16 page ![]() ADP2503/ADP2504 Preliminary Technical Data APPLICATIONS INFORMATION INDUCTOR SELECTION The high 2.5 MHz switching frequency of the ADP2503/ ADP2504 allows for minimal output voltage ripple, while minimizing inductor size and cost. Careful inductor selection also optimizes efficiency and reduces electromagnetic interfe rence (EMI). The selection of the inductor value determines the inductor current ripple and loop dynamics. V OUT × (VIN − VOUT ) ΔI , peak (Buck) = L V × f × L IN OSC (V OUT − VIN ) V ΔI L , peak (Boost) = × IN V f × L OUT OSC where fOSC is the switching frequency (typically 2.5 MHz), and L is the inductor value in henries. A larger inductor value reduces the current ripple (and therefore peak inductor current), but is physically larger in size with increased dc resistance. Inductor values between 1 μH and 1.5 μH are usually suggested. The maximum inductor value to ensure stability is 2.0 μH. For increased efficiency with the ADP2504, it is suggested a 1.5 μH inductor be used. The inductor peak current is at the maximum in boost mode. To determine the actual maximum inductor current in boost mode, the input dc current should be estimated. ⎛ V OUT ⎞ 1 I IN (MAX) = I LOAD(MAX) × ⎜⎜ ⎟⎟× V IN ⎠ η ⎝ where η is efficiency (assume η ≈ 0.85 to 0.90). The saturation current rating of the inductor must be at least IIN(MAX) + ΔILOAD/2. Ceramic multilayer inductors can be used with lower current designs for a reduced overall solution size and dc resistance (DCR). These are available in low profile packages. Care must be taken as these derate quickly as the inductor value is increased especially at higher operating temperatures. Ferrite core inductors have good core loss characteristics as well as reasonable dc resistance. A shielded ferrite inductor reduces the EMI generated by the inductor. Table 5. Recommended Output Capacitors Table 4. Sample of Recommended Inductors Vendor Value (μH) Part No. DCR (mΩ) ISAT (A) Dimensions L × W × H (mm) Toko Toko Toko Murata Murata TDK TDK Coilcraft Coilcraft 1.2 1.5 1 1 1.5 1.0 1.5 1.0 1.5 DE2810C DE2810C MDT2520-CN LQM2HP-G0 LQM2HP-G0 CPL2512T CPL2512T LPS3010 LPS3010 55 60 100 55 70 90 120 85 120 1.7 1.5 1.8 1.6 1.5 1.5 1.2 1.7 1.3 2.8 × 2.8 × 1.0 2.8 × 2.8 × 1.0 2.5 × 2 × 1.2 2.5 × 2 × 1 2.5 × 2 × 1 2.5 × 1.5 × 1.2 2.5 × 1.5 × 1.2 3.0 × 3.0 × 0.9 3.0 × 3.0 × 0.9 Output Capacitor Selection The output capacitor selection determines the output voltage ripple, transient response and the loop dynamics of the ADP2503/ADP2504. The output voltage ripple for a given output capacitor is given by V × (V − V ) OUT IN OUT ΔV , peak (Buck) = OUT 2 V × 8 × L × (f ) ×C IN OSC OUT I LOAD× (VOUT − VIN ) ΔV OUT, peak (Boost ) = C ×V × f OUT OUT OSC If the ADP2503/ADP2504 are operating in buck mode, the worst-case voltage ripple occurs for the highest input voltage, VIN. If the ADP2503/ADP2504 are operating in boost mode, the worst-case voltage ripple occurs for the lowest input voltage, VIN. The maximum voltage overshoot, or undershoot is inversely proportional to the value of the output capacitor. To ensure stability and excellent transient response, it is recommended to use a minimum of 22 μF X5R 6.3 V or 2 × 10 μF X5R 6.3 V capacitors at the output. The effective capacitance (includes temperature, dc bias effects) needed for stability is 14 μF. Vendor Value Part No. Dimensions L × W × H (mm) Murata 2 × 10 μF, 6.3 V GRM188R60J106ME47 1.6 × 0.8 × 0.8 (2) TDK 2 × 10 μF, 6.3 V C1608JB0J106K 1.6 × 0.8 × 0.8 (2) Murata 22 μF, 6.3 V GRM21BR60J226ME39 2 × 1.25 × 1.25 TDK 22 μF, 6.3 V C2012X5R0J226M 2 × 1.25 × 1.25 TDK 22 μF, 10 V C3216X5R1A226K 2 × 1.25 × 1.25 Murata 10 μF, 10 V GRM21BR71A106KE51L 2 × 1.25 × 1.25 (2) Rev. PrB | Page 12 of 16 |
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