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MCP8024 데이터시트(PDF) 29 Page - Microchip Technology |
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MCP8024 데이터시트(HTML) 29 Page - Microchip Technology |
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29 / 46 page ![]() 2013 Microchip Technology Inc. DS20005228A-page 29 MCP8024 5.0 APPLICATION INFORMATION 5.1 Component Calculations 5.1.1 CHARGE PUMP CAPACITORS FIGURE 5-1: Charge Pump. Let: • Iout = 20 mA • Fcp = 75 kHz (charge/discharge in one cycle) • 50% duty cycle •VDD = 6V (worst case) • RDSON = 7.5 (RPMOS), 3.5 (RNMOS) •Vout = 2 x VDD (ideal) •CESR = 20 m (ceramic capacitors) • Vdrop = 100 mV (Vout ripple) •Tchg = Tdchg = 0.5 * 1/75 kHz = 6.67 µs 5.1.1.1 Flying Capacitor The flying capacitor should be chosen to charge to a minimum of 95% (3 ) of VDD within one half of a switching cycle. 3 * = Tchg = Tchg/3 RC = Tchg/3 C = Tchg/(R * 3) C = 6.67 µs/([7.5 + 3.5 + 0.02] * 3) C = 202 nF Choose a 180 nF capacitor. 5.1.1.2 Charge Pump Output Capacitor Solve for the charge pump output capacitance, connected between V12P and ground, that will supply the 20 mA load for one switch cycle. The 12VLDO pin on the MCP8024 is the "V12P" pin referenced in the calculations. C = Iout * dt/dV C = Iout * 13.3 µs/(Vdrop + Iout * CESR) C = 20 mA * 13.3 µs/(0.1V + 20 mA * 20 m ) C >= 2.65 µF 5.1.1.3 Charging Path (Flying Capacitor across CAP1 and CAP2) VCAP = VDD (1 - e -T/t) VCAP = 6V (1 - e -[6.67 µs / ([7.5 + 3.5 + 20 m] * 180 nF)]) VCAP = 5.79V available for transfer 5.1.1.4 Transfer Path (Flying and Output Capacitors) V12P = VDD + VCAP - IOUT * dt / C V12P = 6V + 5.79V - (20 mA * 6.67 µs / 180 nF) V12P = 11.049V 5.1.1.5 Calculate the Flying Capacitor Voltage Drop in One Cycle While Supplying 20 mA dv = Iout * dt / C dv = 20 mA * 6.67 µs / 180 nF dv = 0.741V @ 20 mA The second and subsequent transfer cycles will have a higher voltage available for transfer since the capacitor is not completely depleted with each cycle. VCAP will then be VCAP - dV after the first transfer, plus VDD - (VCAP - dV) times the RC constant. This repeats for each subsequent cycle, allowing a larger charge pump capacitor to be used if the system will tolerate several charge transfers before requiring full-output voltage and current. Repeating section 5.1.1.3 for the second cycle (and subsequent by re-calculating for each new value of VCAP after each transfer): VCAP = (VCAP - dV) + (VDD - (VCAP - dV)) (1 - e -T/t) VCAP = (5.79V - 0.741V) + (6V - (5.79V - 0.741V) * (1 - e-[6.67 μs/([7.5Ω + 3.5Ω + 20 mΩ] * 180 nF)]) VCAP = 5.049V + 0.951V * 0.96535 VCAP = 5.967V available for transfer on second cycle 5.1.1.6 Charge Pump Results The maximum charge pump flying capacitor value is 202 nF to maintain a 95% voltage transfer ratio on the first charge pump cycle. Larger capacitor values may be used but they will require more cycles to charge to maximum voltage. The minimum required output capacitor value is 2.65 µF to supply 20 mA for 13.3 µs with a 100 mV drop. A larger output capacitor may be used to cover losses due to capacitor tolerance over temperature, capacitor dielectric and PCB losses. These are approximate calculations. The actual volt- ages may vary due to incomplete charging or discharg- ing of capacitors per cycle due to load changes. The charge pump calculations assume the charge pump is able to charge up the external boot cap within a few cycles. Transfer Charge |
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