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94 80 0 .2 5 12 11 2 12 11 12 3 7 6 2-O 5.5 4 12 (C2E1) 1 (E2) 2 (C1) 3 3-M5 23 23 17 16 7 16 7 16 4-fasten tab #110 t= 0.5 8 30 +1 .0 - 0 .5 LABEL 6 23 35 7(G2) 6(E2) 1 Dimension:mm ollector-mitter oltage ate-mitter oltage ollector urrent ollector ower issipation unction emperature ange torage emperature ange (erminal to ase ,inute) solation oltage odule ase to eatsink ounting orque usbar to ain erminal (kgfcm) , . ise urn-on all urn-off ime ime ime ime = 600V, = 0V = 20V,= 0V = 75A,= 15V = 5V,= 75mA = 10V,= 0V,= 1MH = = = = 300V 4.0 12.0 15V . . . . 3,200 . . . . . 1. . . . . . . . ollector-mitter ut-ff urrent ate-mitter eakage urrent ollector-mitter aturation oltage ate-mitter hreshold oltage nput apacitance witching ime orward urrent eak orward oltage everse ecovery ime . . . . . . . = 75A,= 0V = 75A,= -10V i/t= 150A/s hermal mpedance iode th(j-c) Junction to Case Tc . . . . . 00 Fig.1- Output Characteristics (Typical) 150 Fig.2- Output Characteristics (Typical) TC=25C 150 TC=125C VGE=20V 12V VGE=20V 125 12V 125 15V 11V 15V 11V Collector Current I C (A) Collector Current I C (A) 100 100 75 10V 75 10V 50 9V 50 9V 25 25 8V 8V 0 0 0 1 2 3 4 5 0 1 2 3 4 5 Collector to Emitter Voltage VCE (V) Collector to Emitter Voltage VCE (V) Fig.3- Collector to Emitter On Voltage vs. Gate to Emitter Voltage (Typical) 16 14 12 10 8 6 4 2 0 Fig.4- Collector to Emitter On Voltage vs. Gate to Emitter Voltage (Typical) TC=25C 16 14 12 10 8 6 4 2 0 TC=125C IC=30A 75A 150A IC=30A 75A 150A 0 4 8 12 16 20 Collector to Emitter Voltage V CE (V) Collector to Emitter Voltage V CE (V) 0 4 8 12 16 20 Gate to Emitter Voltage VGE (V) Gate to Emitter Voltage VGE (V) Fig.5- Gate Charge vs. Collector to Emitter Voltage (Typical) 400 350 Fig.6- Capacitance vs. Collector to Emitter Voltage (Typical) 16 14 10000 30000 RL=4.0 TC=25C Collector to Emitter Voltage V CE (V) VGE=0V f=1MHZ TC=25C Gate to Emitter Voltage VGE (V) 300 250 200 150 100 50 0 12 10 Capacitance C (pF) Cies 3000 VCE=300V 200V 100V 8 6 4 2 0 300 Coes 1000 Cres 300 0 50 100 150 200 250 100 0.1 0.2 0.5 1 2 5 10 20 50 100 200 Total Gate Charge Qg (nC) Collector to Emitter Voltage VCE (V) 00 Fig.7- Collector Current vs. Switching Time (Typical) 1 10 Fig.8- Series Gate Impedance vs. Switching Time (Typical) VCC=300V IC=75A VGE=15V TC=25C Resistive Load 0.8 Switching Time t (s) Switching Time t (s) tOFF 0.6 VCC=300V RG=12 VGE=15V TC=25C Resistive Load 5 2 1 0.5 tf 0.4 toff ton tr(V CE) tf 0.2 0.1 0.05 0.2 tON tr(V CE) 0 0 50 100 150 0.02 10 30 100 300 Collector Current IC (A) Series Gate Impedance RG ( ) Fig.9- Collector Current vs. Switching Time 10 10 Fig.10- Series Gate Impedance vs. Switching Time VCC=300V IC=75A VGE=15V TC=125C Inductive Load 1 Switching Time t (s) Switching Time t (s) tOFF tON tf tr(Ic) VCC=300V RG=12 VGE=15V TC=125C Inductive Load 5 2 1 0.5 0.1 toff ton tf tr(IC ) 0.2 0.1 0.05 0.01 0.001 0 25 50 75 100 125 150 0.02 10 30 100 300 Collector Current IC (A) Series Gate Impedance RG ( ) Fig.11- Collector Current vs. Switching Loss 8 100 Fig.12- Series Gate Impedance vs. Switching Loss VCC=300V IC=75A VGE=15V TC=125C Inductive Load Switching Loss ESW (mJ/Pulse) Switching Loss ESW (mJ/Pulse) 6 VCC=300V RG=12 VGE=15V TC=125C Inductive Load EON 30 EOFF 10 4 EON ERR EOFF 3 2 ERR 1 0 0 25 50 75 100 125 150 0.3 10 30 100 300 Collector Current IC (A) Series Gate Impedance RG ( ) 00 150 Fig.13- Forward Characteristics of Free Wheeling Diode (Typical) TC=25C TC=125C Fig.14- Reverse Recovery Characteristics (Typical) 1000 Peak Reverse Recovery Current I RrM (A) Reverse Recovery Time trr (ns) 500 125 trr 200 100 50 IF=75A TC=25C TC=125C Forward Current I F (A) 100 75 50 20 10 5 IRrM 25 0 0 1 2 3 4 2 0 75 150 225 300 375 450 Forward Voltage VF (V) -di/dt (A/s) Fig.15- Reverse Bias Safe Operating Area 500 200 100 RG=12 , VGE=15V, TC<125C Collector Current I C (A) 50 20 10 5 2 1 0.5 0.2 0.1 0 200 400 600 800 Collector to Emitter Voltage V CE (V) Fig.16- Transient Thermal Impedance 1x10 1 Transient Thermal Impedance Rth (J-C) (C/W) 3 1 FRD IGBT 3x10 -1 1x10 -1 3x10 -2 1x10 -2 TC=25C 1 Shot Pulse 3x10 -3 10 -5 10 -4 10 -3 10 -2 10 -1 1 10 1 Time t (s) 00 |
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