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ADP1031ACPZ-5-R7 数据表(PDF) 32 Page - Analog Devices |
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ADP1031ACPZ-5-R7 数据表(HTML) 32 Page - Analog Devices |
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32 / 38 page ![]() ADP1031 Data Sheet Rev. A | Page 32 of 38 Diode Zener Diode Clamp A Zener diode can replace the resistor, capacitor (RC) network on the resistor, capacitor, diode clamp when the clamping level must be consistent and well defined. Choose the Zener diode breakdown voltage to balance power loss and switch voltage protection. Calculate the Zener voltage by using the following equation: VZENER (MAX) ≤ SWPVMAX − VINP(MAX) where: VZENER (MAX) is the maximum Zener diode breakdown voltage or the Zener voltage, which can be the same as the clamping voltage, VCLAMP. SWPVMAX is the absolute maximum rating of the SWP pin. VINP (MAX) is the maximum input supply voltage. The power loss in the clamp determines the power requirement for the Zener diode. Use the following equation to calculate the Zener diode power dissipation: PZENER = (VZENER × LLEAK × IPEAK2 × fSW)/(2 × (VZENER − VOUT1)) where: PZENER is the Zener diode power dissipation. Choose a Zener diode with power rating higher than the calculated value. VZENER is the Zener diode breakdown voltage or the Zener voltage. LLEAK is the leakage inductance of the transformer. IPEAK is the peak current on the flyback switch. fSW is the switching frequency of the flyback regulator. VOUT1 is the output voltage of the flyback regulator. Ripple Current (IAC) vs. Inductance Calculate the ripple current by first determining the duty cycle in continuous conduction mode. DCCM = (VOUT1 + VD)/(VOUT1 + VD + VINP) where: DCCM is the duty cycle of the flyback switch. VOUT1 is the output voltage of the flyback regulator. VD is the forward voltage drop across the rectifier diode. VINP is the input supply voltage. Then, from the duty cycle, calculate the IAC in the flyback switch and transformer primary. IAC = (VINP × DCCM)/(fSW × LPRI) where: IAC is the ripple current through the primary side of the transformer and flyback switch. VINP is the input supply voltage. DCCM is the duty cycle of the flyback switch. fSW is the switching frequency of the flyback regulator. LPRI is the primary side inductance of the transformer. Maximum Output Current Calculation The maximum output power and current that can be achieved from the flyback output depends on a number of variables within the regulator. These variables include the transformer choice, the operating frequency, and the rectifier diode choice. The flyback regulator output is the supply to the buck regulator that drives VOUT2 and the inverting regulator that drives VOUT3. Determine the maximum output power capability by PVOUT1 (MAX) = 0.5 × (IPEAK2 − (IPEAK − IAC/2)2) × LPRI × fSW × η where: PVOUT1 (MAX) is the maximum output power from VOUT1. IPEAK is the peak current on the flyback switch. IAC is the ripple current through the primary side of the transformer and flyback switch. LPRI is the primary side inductance of the transformer. fSW is the switching frequency of the flyback regulator. η is the expected efficiency of the flyback regulator. The lower limit of the flyback current-limit threshold, ILIM(FLYBACK), limits the maximum IPEAK. However, it is not recommended to operate at this level to avoid unwanted current-limit events due to variation in transformer inductance, efficiency, flyback switching frequency, and rectifier diode forward voltage drop. If the load on the flyback causes the current limit to trip, the output voltage may not regulate as expected. It is recommended to choose a peak operating current with built in margin for the variations mentioned or to calculate the maximum output power or output load using the worst case transformer inductance, efficiency, diode forward voltage drop, and flyback switching frequency. Calculate the maximum load current on VOUT1 by IVOUT1 (MAX) = PVOUT1 (MAX)/VOUT1 where: IVOUT1 (MAX) is the maximum output current from VOUT1. PVOUT1 (MAX) is the maximum output power from VOUT1. VOUT1 is the output voltage of the flyback regulator. |
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