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TOP264EG/VG 数据表(PDF) 15 Page - Power Integrations, Inc. |
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TOP264EG/VG 数据表(HTML) 15 Page - Power Integrations, Inc. |
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15 / 36 page ![]() Rev. B 03/10 15 TOP264-271 www.powerint.com PI-5667-030810 R15 33 Ω R19 20 k Ω R18 10 k Ω 1% R17 147 k Ω 1% R16 20 k Ω R27 10 k Ω R22 1.6 k Ω U2 LMV431AIMF 1% D2 RS1K D3 BAV19WS R12 4.7 k Ω R1 2.2 M Ω R2 2.2 M Ω R13 6.8 Ω 1/8 W R20 191 k Ω 1% R25 20 Ω 1/8 W R6 150 Ω R5 300 Ω R29 300 Ω R11 300 Ω R28 300 Ω U3B PS2501- 1-H-A U3A PS2501- 1-H-A L4 200 µH L3 12 mH U1 TOP269EG C7 47 µF 16 V C16 22 nF 50 V C22 100 nF 50 V C19 6.8 nF 50 V C10 56 µF 35 V D4 BAV21WS- 7-F D5 V30100C C6 100 nF 50 V D1 GBU8J 600 V C13 470 µF 25 V C14 470 µF 25 V C21 10 nF 50 V C12 1 nF 100 V 3 T1 RM10 FL1 FL2 5 4 1 C11 1 nF 250 VAC C1 330 nF 275 VAC F1 4 A TOPSwitch-JX L N 19 V, 3.42 A RTN C2 120 µF 400 V C9 220 nF 25 V C4 1000 pF 630 V C5 2.2 nF 1 kV VR2 SMAJ250A 90 - 265 VAC D S C V F X CONTROL R3 5.1 M Ω R7 10 M Ω R4 5.1 M Ω R9 11 k Ω 1% R8 10 M Ω R24 2.2 Ω R14 20 Ω C15 470 pF 50 V Q2 MMBT3904 VR1 ZMM5244B-7 Q1 MMBT4403 Input Voltage (VAC) 90 230 Full Power Efficiency (%) 86.6 89.1 Average Efficiency (%) 89.5 No-load Input Power (mW) 57.7 115 88.4 89.8 59.7 86.7 R10 100 Ω Figure 24. Schematic of High Efficiency 19 V, 65 W, Universal Input Flyback Supply With Low No-load. Application Example Low No-load, High Efficiency, 65 W, Universal Input Adapter Power Supply The circuit shown in Figure 24 shows a 90 VAC to 265 VAC input, 19 V, 3.42 A output power supply, designed for operation inside a sealed adapter case type. The goals of the design were highest full load efficiency, highest average efficiency (average of 25%, 50%, 75% and 100% load points), and very low no-load consumption. Additional requirements included latching output overvoltage shutdown and compliance to safety agency limited power source (LPS) limits. Measured efficiency and no-load performance is summarized in the table shown in the schematic which easily exceed current energy efficiency requirements. In order to meet these design goals the following key design decisions were made. PI Part Selection • One device size larger selected than required for power delivery to increase efficiency The current limit programming feature of TOPSwitch-JX allows the selection of a larger device than needed for power delivery. This gives higher full load, low line efficiency by reducing the MOSFET conduction losses (I RMS 2 × R DS(ON)) but maintains the overload power, transformer and other components size as if a smaller device had been used. For this design one device size larger than required for power delivery (as recommended by the power table) was selected. This typically gives the highest efficiency. Further increases in device size often results in the same or lower efficiency due to the larger switching losses associated with a larger MOSFET. Line Sense Resistor Values • Increasing line sensing resistance from 4 M W to 10.2 MW to reduce no-load input power dissipation by 16 mW Line sensing is provided by resistors R3 and R4 and sets the line undervoltage and overvoltage thresholds. The combined value of these resistors was increased from the standard 4 M W to 10.2 M W. This reduced the resistor dissipation, and therefore contribution to no-load input power, from ~26 mW to ~10 mW. To compensate the resultant change in the UV (turn-on) threshold resistor R20 was added between the CONTROL and VOLTAGE- MONITOR pins. This adds a DC current equal to ~16 mA into the V pin, requiring only 9 mA to be provided via R3 and R4 to reach the V pin UV (turn-on) threshold current of 25 mA and setting the UV threshold to 95 VDC. This technique does effectively disable the line OV feature as the resultant OV threshold is raised from ~450 VDC to ~980 VDC. However in this design there was no impact as the value of input capacitance (C2) was sufficient to allow the design to withstand differential line surges greater than 2 kV without the peak drain voltage reaching the BV DSS rating of U1. Specific guidelines and detailed calculations for the value of R20 may be found in the TOPSwitch-JX Application Note (AN-47). Clamp Configuration – RZCD vs RCD • An RZCD (Zener bleed) was selected over an RCD clamp to give higher light load efficiency and lower no-load consumption |
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