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MCP16331 数据表(PDF) 21 Page - Microchip Technology |
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MCP16331 数据表(HTML) 21 Page - Microchip Technology |
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21 / 40 page ![]() 2014 Microchip Technology Inc. DS20005308B-page 21 MCP16331 EXAMPLE 5-4: A 0.5A to 1A Diode is recommended. 5.8 Boost Diode The boost diode is used to provide a charging path from the low-voltage gate drive source while the switch node is low. The boost diode blocks the high voltage of the switch node from feeding back into the output voltage when the switch is turned on, forcing the switch node high. A standard 1N4148 ultra-fast diode is recommended for its recovery speed, high voltage blocking capability, availability and cost. The voltage rating required for the boost diode is VIN. For low-boost voltage applications, a small Schottky diode with the appropriately rated voltage can be used to lower the forward drop increasing the boost supply for gate drive. 5.9 Boost Capacitor The boost capacitor is used to supply current for the internal high side drive circuitry that is above the input voltage. The boost capacitor must store enough energy to completely drive the high-side switch on and off. A 0.1 µF X5R or X7R capacitor is recommended for all applications. The boost capacitor maximum voltage is 5.5V, so a 6.3V or 10V rated capacitor is recommended. 5.10 Thermal Calculations The MCP16331 is available in 6-lead SOT-23 and 8- lead TDFN packages. By calculating the power dissipation and applying the package thermal resistance ( JA), the junction temperature is estimated. To quickly estimate the internal power dissipation for the switching step-down regulator, an empirical calcu- lation using measured efficiency can be used. Given the measured efficiency, the internal power dissipation is estimated by Equation 5-7. This power dissipation includes all internal and external component losses. For a quick internal estimate, subtract the estimated Schottky diode loss and inductor DCR loss from the PDIS calculation in Equation 5-7. EQUATION 5-7: TOTAL POWER DISSIPATION ESTIMATE The difference between the first term, input power, and the second term, power delivered, is the total system power dissipation. The freewheeling Schottky diode losses are determined by calculating the average diode current and multiplying by the diode forward drop. The inductor losses are estimated by PL = IOUT2 x LDCR. EQUATION 5-8: DIODE POWER DISSIPATION ESTIMATE EXAMPLE 5-5: TABLE 5-5: FREEWHEELING DIODES App Manufacturer Part Number Rating 12 VIN 500 mA Diodes Inc. DFLS120L-7 20V, 1A 24 VIN 100 mA Diodes Inc. B0540Ws-7 40V, 0.5A 18 VIN 500 mA Diodes Inc. B130L-13-F 30V, 1A 48 VIN 500 mA Diodes Inc. B1100 100V, 1A IOUT =0.5A VIN = 15V VOUT =5V D= 5/15 IDAVG = 333 mA V OUT I OUT Efficiency ------------------------------- V OUT I OUT – P Dis = P Diode V F 1D – I OUT = VIN =10V VOUT =5.0V IOUT =0.4A Efficiency = 90% Total System Dissipation = 222 mW LDCR =0.15 PL =24 mW Diode VF =0.50 D= 50% PDiode =125 mW MCP16331 internal power dissipation estimate: PDIS - PL - PDIODE = 73 mW JA =198°C/W Estimated Junction Temperature Rise =+14.5°C |
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