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M62281P Datasheet(PDF) 6 Page - Renesas Technology Corp |
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M62281P Datasheet(HTML) 6 Page - Renesas Technology Corp |
6 / 13 page M62281P/FP REJ03D0840-0201 Rev.2.01 Nov 14, 2007 Page 6 of 12 In the case that feed forward system by photo-coupler is applied, following two methods are available. One is the method by error amp. as in figure 3-1, the other is by the direct connection to photo-coupler as in figure 3-2. When photo-coupler is directly connected to EA OUT terminal, input terminal of error amp. is connected to GND, photo-coupler is connected directly to EA OUT terminal. + − VCC Reference voltage (2.5 V) EA OUT EA IN RIN RF R1 R2 Figure 3-1 Method to Use Photo-Coupler (1) + − Reference voltage (2.5 V) EA OUT EA IN Figure 3-2 Method to Use Photo-Coupler (2) In figure 3-1, AC gain is represented as : A V = RF / R IN Proper gain setting is about 40 dB. RF should be 52 k Ω or more due to the current source capability of error amp. R1, R2 should meet the condition as below so that the voltage of EA IN terminal should not be over 5 V. R2 • V CC / (R1 + R2) ≤ 5 V Due to the input impedance of EA IN terminal, the current in R1, R2 should be less than several mA. CT (OVP) Terminal Timer type latch circuit works as follows. Constant charge current flows out from CT terminal to the external capacitor when CLM is operative. When the voltage of CT terminal rises up to over 4.0 V (Typ.), the latch circuit operates to make functions of this IC inoperative. Inoperative status is sustained until supply voltage becomes less than stop voltage. The value for start-up register has to be set so that the current over 1.8 mA (Typ.) can flow the resistor because the stop status has to be kept by the current in start-up resistor R1 shown in application circuit. When timer latch circuit is operative, supply current increases at high voltage as shown in figure 4 to avoid the damage caused by unnecessarily in creased supply voltage. Inoperative status goes back to operation by forcibly decreasing the voltage of CT terminal to less then 0.7 V. |
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