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MIC28513 データシート(PDF) 22 Page - Microchip Technology |
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MIC28513 データシート(HTML) 22 Page - Microchip Technology |
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22 / 34 page ![]() MIC28513 DS20005522A-page 22 2016 Microchip Technology Inc. MOSFETs. Larger output ripple currents will also require more output capacitance to smooth out the larger ripple current. Smaller peak-to-peak ripple currents require a larger inductance value and therefore a larger and more expensive inductor. A good compromise between size, loss and cost is to set the inductor ripple current to be equal to 20% of the maximum output current. The inductance value is calculated by: EQUATION 5-4: In continuous conduction mode, the peak inductor current is equal to the average output current plus one half of the peak-to-peak inductor current ripple. EQUATION 5-5: The RMS inductor current is used to calculate the I2R losses in the inductor. EQUATION 5-6: Maximizing efficiency requires the proper selection of core material and minimizing the winding resistance. The high frequency operation of the MIC28513 requires the use of ferrite materials for all but the most cost sensitive applications. Lower cost iron powder cores may be used but the increase in core loss will reduce the efficiency of the power supply. This is especially noticeable at low output power. The winding resistance decreases efficiency at the higher output current levels. The winding resistance must be minimized although this usually comes at the expense of a larger inductor. The power dissipated in the inductor is equal to the sum of the core and copper losses. At higher output loads, the core losses are usually insignificant and can be ignored. At lower output currents, the core losses can be a significant contributor. Core loss information is usually available from the magnetics vendor. Copper loss in the inductor is calculated by Equation 5-7: EQUATION 5-7: The resistance of the copper wire, DCR, increases with the temperature. The value of the winding resistance used should be at the operating temperature. EQUATION 5-8: 5.4 Output Capacitor Selection The type of the output capacitor is usually determined by its equivalent series resistance (ESR). Voltage and RMS current capability are also important factors in selecting an output capacitor. Recommended capacitor types are ceramic, tantalum, low-ESR aluminum electrolytic, OS-CON and POSCAP. For high ESR electrolytic capacitors, ESR is the main cause of the output ripple. The output capacitor ESR also affects the control loop from a stability point of view. For a low ESR ceramic output capacitor, ripple is dominated by the reactive impedance. The maximum value of ESR is calculated by Equation 5-9. EQUATION 5-9: The total output ripple is a combination of the ESR and output capacitance. The total ripple is calculated by Equation 5-10. EQUATION 5-10: L V OUT V IN MAX V OUT – V IN MAX I LPP f SW -------------------------------------------------------------------- = Where: fSW Switching Frequency ∆IL(PP) The peak-to-peak inductor current ripple; typically 20% of the maximum output current I LPK I OUT 0.5 + I LPP = I LRMS I OUT MAX 2 I LPP 2 I2 --------------------- + = P LCU I LRMS 2 DCR = DCR HT DCR 20C 10.0042 + T H T 20C – = Where: TH Temperature of wire under full load T20C Ambient temperature DCR(20C) Room temperature winding resistance (usually specified by the manufacturer) ESR C OUT V OUT PP I LPP --------------------------- Where: ∆VOUT(PP) Peak-to-Peak Output Voltage Ripple ∆IL(PP) Peak-to-Peak Inductor Current Ripple V OUT PP 2 I LPP C OUT f SW 8 -------------------------------------- I LPP ESR COUT 2 + = Where: D Duty Cycle COUT Output Capacitance Value fSW Switching Frequency |
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