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ADP1032ACPZ-2-R7 数据表(PDF) 30 Page - Analog Devices |
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ADP1032ACPZ-2-R7 数据表(HTML) 30 Page - Analog Devices |
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30 / 37 page ![]() ADP1032 Data Sheet Rev. 0 | Page 30 of 37 Ripple Current vs. Capacitor Value The output capacitor value must be chosen to minimize the output voltage ripple while considering the increase in size and cost of a larger capacitor. Use the following equation to calculate the output capacitance: COUT = (LPRI × ISWP2)/(2 × VOUT1 × ΔVOUT1) where: COUT is the capacitance of the flyback output capacitor. LPRI is the primary inductance of the transformer. ISWP is the peak switch current. ΔVOUT1 is the allowable flyback regulator output ripple. Schottky Diode A Schottky diode with low junction capacitance is recommended for the rectification diode D1. At higher output voltages and especially at higher switching frequencies, the junction capacitance is a significant contributor to efficiency. Choose an output diode with a forward current rating (IF) that is greater than the maximum load requirement and with a reverse voltage rating (VR) that is greater than the summation of the maximum supply voltage (VINP (MAX)) and the maximum output voltage (VOUT1 (MAX)). Transformer The transformer used with the ADP1032 is an important component within the system, in terms of efficiency and maximum output power capability. The transformer designs are listed in Table 17. A number of factors must be taken into account when designing a transformer for use with the ADP1032. Turn Ratio The ADP1032 requires the use of a transformer with a primary to secondary turn ratio of 1:1 to start up properly. Primary Inductance The ADP1032 operates with a transformer with an inductance in the 80 μH to 560 μH range. However, it is recommended to choose an inductance value that results in the flyback regulator output voltage (VOUT1) divided by the transformer primary inductance being less than or equal to 140,000 to maintain control loop stability. VOUT1/LPRI ≤ 140,000 Using a transformer at the lower end of the inductance range can result in a smaller transformer but also reduces the output power capabilities due to larger ac ripple current through the transformer. Conversely, operating at higher inductance can result in higher output power at the expense of a potentially larger transformer. Flyback Transformer Saturation Current Do not exceed the saturation current of the transformer in operation, or this may lead to much higher losses and overall lower system efficiency. Choose a transformer with a saturation current rating that is greater than the expected peak switch current (ISWP) across line and load conditions. Series Winding Resistance In power loss sensitive applications, keep the series resistance of the primary and secondary windings as low as possible to improve overall efficiency. Leakage Inductance and Clamping Circuits When choosing a transformer to operate with the ADP1032, minimize transformer leakage inductance. Leakage inductance causes a voltage spike to appear on the SWP node when the flyback regulator switch is off due to energy storage in the leakage inductance that is not transferred to the output. The voltage spike is more prominent at higher load currents and increases with higher leakage inductance. It is important to keep the voltage spikes lower than the voltage rating of the flyback switch that drives the SWP pin. Margin must be built into any design to avoid exceeding this limit if no clamp or snubber circuit is used to protect the flyback switch. To estimate the leading voltage spike at the SWP pin when the switch turns off, use the following equation: VPEAK = IPEAK × (LLEAK/(CP + CSWP))1/2 + VINP + VOUT1 + VD where: VPEAK is the voltage spike amplitude. IPEAK is the peak current on the flyback switch. LLEAK is the leakage inductance of the transformer. CP is the parasitic capacitance of the transformer. CSWP is the capacitance on the flyback switch. VINP is the input supply voltage. VD is the forward voltage drop across the rectifier diode. A snubber or clamp circuit can protect the flyback switch for cases where the leakage inductance is too high for application conditions. Two common types of clamping circuits are the resistor, capacitor, diode clamp shown in Figure 73 and the diode Zener diode clamp shown in Figure 74. The resistor, capacitor, diode clamp quickly dampens the voltage spike and provides improved EMI performance, and the diode Zener diode clamp can be used when the clamping level must be consistent and well defined. The diode Zener diode clamp has slightly higher power efficiency over the resistor, capacitor, diode clamp. However, the cost of the diode Zener diode clamp solution is typically higher than the resistor, capacitor, diode solution. VOUT1 Tx1 VINP SWP D1 1:1 LLEAK LPRI RCLAMP CCLAMP DCLAMP Figure 73. Resistor, Capacitor, Diode Clamp |
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