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ADP1653 数据表(PDF) 18 Page - Analog Devices |
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ADP1653 数据表(HTML) 18 Page - Analog Devices |
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18 / 24 page ![]() ADP1653 Data Sheet Rev. C | Page 18 of 24 EXTERNAL COMPONENT SELECTION Selecting the Inductor The ADP1653 step-up converter increases the battery voltage to allow driving one, two, or three LEDs, whose combined voltage drop is higher than the battery voltage plus the 0.32 V (typical) current source headroom voltage. This allows the converter to regulate the HPLED current over the entire battery voltage range and with a wide variation of LED forward voltage. Users should choose an inductor value such that the inductor ripple current is approximately 2/5th of the maximum dc input load current. In general, lower inductance values have higher saturation current and lower series resistance for a given physical size. For most applications, an inductor in the range of 1.5 µH to 3.3 µH works well. To determine the inductor ripple current, users should first calculate the switch duty cycle for the step-up converter, which is determined by the input voltage (VIN), output voltage (VOUT), and Schottky forward voltage (VF). VOUT equals the LED voltage drop plus 320 mV (typical) overhead for the HPLED current regulator. D V V V F OUT IN − = + 1 (14) Solving for D F OUT IN F OUT F OUT IN V V V V V V V V D + − + = + − = 1 The HPLED (output) current is regulated as low as 50 mA (torch mode) and as high as 500 mA (flash mode). The maximum dc input current is related to the maximum dc output current by the following equation: η V V I I IN OUT MAX OUT MAX IN 1 ) ( ) ( × × = (15) where η is efficiency (assume η ≈ 0.80 in the two-LED case). Choose the initial inductor value by using the equation + − + × ∆ = F OUT IN F OUT SW L IN V V V V V f I V L (16) where: L is the inductor value (reduce L to reduce solution size). fSW is the switching frequency. ΔIL is the inductor ripple current, typically 2/5th of the maximum dc input current. VF is the forward voltage of the Schottky diode. The inductor saturation current should be greater than the sum of the dc input current and half the inductor ripple current. A reduction in the effective inductance due to saturation increases the inductor current ripple but improves loop stability, reducing the amount of output capacitance required. Ensure that the peak inductor current (dc + 1/2 of inductor ripple) is less than the LX minimum current limit (1.8 A). Table 9. Recommended Inductors Vendor Value (µH) Part No. DCR (mΩ) ISAT (A) Dimensions L × W × H (mm) Toko 2.2 FDSE0312 145 3.1 3 × 3 × 1.2 Toko 2.0 DE2812C 67 1.8 2.8 × 2.8 × 1.2 Toko 3.3 FDSE0312 199 2.6 3 × 3 × 1.2 Coilcraft 2.2 LPS3010 220 1.4 3 × 3 × 1.0 Coilcraft 2.2 LPS3314 100 1.5 3 × 3 × 1.4 Selecting the Input Capacitor The ADP1653 requires an input bypass capacitor to supply transient currents while maintaining constant input and output voltage. The input capacitor carries the input ripple current, allowing the input power source to supply only the dc current. Use an input capacitor with sufficient ripple current rating to handle the inductor ripple. A 4.7 µF X5R/X7R ceramic capacitor rated for 6.3 V is the minimum recommended input capacitor. Increased input capacitance reduces the amplitude of the switching frequency ripple on the battery. Because of the dc bias charac- teristics of ceramic capacitors, a 0603, 6.3 V X5R/X7R, 10 µF ceramic capacitor is preferable. Table 10. Recommended Input Capacitors Vendor Value Part No. Dimensions L × W × H (mm) Murata 10 µF, 6.3 V GRM188R60J106ME47 1.6 × 0.8 × 0.8 TDK 10 µF, 6.3 V C1608JB0J106K 1.6 × 0.8 × 0.8 Selecting the Diode The ADP1653 is a nonsynchronous boost and, as such, requires an external Schottky rectifier to conduct the inductor current to the output capacitor and HPLEDs when the LX switch is off. Ensure that the Schottky peak current rating is greater than the maximum inductor current. Choose a diode with an average current rating that is significantly larger than the maximum LED current. To prevent thermal runaway, derate the Schottky rectifier to ensure reliable operation at high junction temperatures. To achieve the best efficiency, select a Schottky diode with a low VF. |
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