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SC471 датащи(PDF) 19 Page - Semtech Corporation |
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SC471 датащи(HTML) 19 Page - Semtech Corporation |
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19 / 27 page ![]() 19 © 2008 Semtech Corp. SC471/SC471A www.semtech.com POWER MANAGEMENT a zero in the transfer function and should eliminate the problem. It is best to leave a spot on the PCB in case it is needed. + TON 0.75V FB D1 D0 G1 G0 SC471/A R1 R2 R3 R4 VOUT C Logic Control Figure 14 Loop instability can cause oscillations at the output as a response to line or load transients. These oscillations can trip the over-voltage protection latch or cause the output voltage to fall below the tolerance limit. The best way for checking stability is to apply a zero-to- full load transient and observe the output voltage ripple envelope for overshoot and ringing. Over one cycle of ringing after the initial step is a sign that the ESR should be increased. SC471/A ESR Requirements The constant on-time control used in the SC471/A regulates the valley of the output ripple voltage. This signal consists of a term generated by the output ESR of the capacitor and a term based on the increase in voltage across the capacitor due to charging and discharging during the switching cycle. The minimum ESR is set to generate the required ripple voltage for regulation. For most applications the minimum ESR ripple voltage is dominated by PCB layout and the properties of SP or POSCAP type output capacitors. For applications using ceramic output capacitors, the absolute minimum ESR must be considered. If the ESR is low enough the ripple voltage is dominated by the charging of the output capacitor. This ripple voltage lags the on-time due to the LC poles and can cause double pulsing if the phase delay exceeds the off-time of the converter. To prevent double pulsing, the ripple voltage present at the FB pin should be 10-15mV minimum over the on-time interval. Dropout Performance The VOUT adjust range for continuous-conduction operation is limited by the fixed 350nS (typical) minimum Off-time One-shot. When working with low input voltages, the duty-factor limit must be calculated using worst-case values for on and off times. The IC duty-factor limitation is given by: DUTY = TONMIN/(TONMIN + TOFFMAX) Be sure to include inductor resistance and MOSFET on- state voltage drops when performing worst-case dropout duty-factor calculations. SC471/A System DC Accuracy (VOUT Controller) Three factors affect VOUT accuracy: the trip point of the FB error comparator, the switching frequency variation with line and load, and the external resistor tolerance. The error comparator offset is trimmed so that it trips when the feedback pin is 0.75V, 1%. The on-time pulse in the SC471/A is calculated to give a pseudo-fixed frequency of 325kHz. Nevertheless, some frequency variation with line and load is expected. This variation changes the output ripple voltage. Because constant on-time converters regulate to the valley of the output ripple, ½ of the output ripple appears as a DC regulation error. For example, If the output ripple is 50mV with VIN = 6 volts, then the measured DC output will be 25mV above the comparator trip point. If the ripple increases to 80mV with VIN = 25 volts, then the measured DC output will be 40mV above the comparator trip. The best way to minimize this effect is to minimize the output ripple. To compensate for valley regulation it is often desirable to use passive droop. Take the feedback directly from the output side of the inductor, placing a small amount of trace resistance between the inductor and output capacitor. This trace resistance should be optimized so that at full load the output droops to near the lower regulation limit. Passive droop minimizes the required output capacitance because the voltage excursions due to load steps are reduced. The use of 1% feedback resistors contributes up to 1% error. If tighter DC accuracy is required use 0.1% resistors. The output inductor value may change with current. This Applications Information (continued) |
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