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6MBP400VEA060-50 Datasheet(PDF) 1 Page - Fuji Electric |
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6MBP400VEA060-50 Datasheet(HTML) 1 Page - Fuji Electric |
1 / 8 page 1 http://www.fujielectric.com/products/semiconductor/ 6MBP400VEA060-50 IGBT Modules IGBT MODULE (V series) 600V / 400A / IPM Maximum Ratings and Characteristics Absolute Maximum Ratings (TC=25°C, VCC=15V unless otherwise specified) Items Symbol Min. Max. Units Collector-Emitter Voltage (*1) VCES 0 600 V Short Circuit Voltage VSC 200 400 V Collector Current DC IC - 400 A 1ms ICP - 800 A Duty=68.6% (*2) -IC - 400 A Collector Power Dissipation 1 device (*3) PC - 1086 W Collector Current DC IC - - A 1ms ICP - - A Forward Current of Diode IF - - A Collector Power Dissipation 1 device (*3) PC - - W Supply Voltage of Pre-Driver (*4) VCC -0.5 20 V Input Signal Voltage (*5) Vin -0.5 VCC+0.5 V Alarm Signal Voltage (*6) VALM -0.5 VCC V Alarm Signal Current (*7) IALM - 20 mA Junction Temperature Tj - 150 °C Operating Case Temperature Topr -20 110 °C Storage Temperature Tstg -40 125 °C Solder Temperature (*8) Tsol - 260 °C Isolating Voltage (*9) Viso - AC2500 Vrms Screw Torque Terminal (M5) - - 3.5 Nm Mounting (M5) Note *1: VCES shall be applied to the input voltage between all Collector and Emitter. [ P1-(U,V,W,B) , P2-(U,V,W,B) , (U,V,W,B)-N1 , (U,V,W,B)-N2 ] Note *2: Duty=125°C/Rth(j-c)D/(IF×VF Max.)×100 Note *3: PC=125°C/Rth(j-c)Q (Inverter & Brake) Note *4: VCC shall be applied to the input voltage between terminal No.3 and 1, 7 and 5, 11 and 9, 14 and 13. Note *5: Vin shall be applied to the input voltage between terminal No.2 and 1, 6 and 5, 10 and 9, 15~18 and 13. Note *6: VALM shall be applied to the voltage between terminal No.4 and 1, 8 and 5, 12 and 9, 19 and 13. Note *7: IALM shall be applied to the input current to terminal No.4, 8, 12 and 19. Note *8: Immersion time 10±1sec. 1 time Note *9: Terminal to base, 50/60Hz sine wave 1min. All terminals should be connected together during the test. Features • Temperature protection provided by directly detecting the junction temperature of the IGBTs • Low power loss and soft switching • High performance and high reliability IGBT with overheating protection • Higher reliability because of a big decrease in number of parts in built-in control circuit |
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