CM50MD-12H POWEREX | Alldatasheet
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Technical content
Three Phase Inverter + Brake
50 Amperes/600 Volts
Powerex, Inc., 200 Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272 Outline Drawing and Circuit Diagram R S T N P P1 B G UV W G EU G EV G EW B UV W GU GV GW E (2 PLACES) LABEL RS T B U V W (2 PLACES) EV NPP 1 G EG EUGU GV GU GBGEE EWGW GE GG EGWGV G Q R Q F Y B Z PMN M P MM C H H K K K L K K LJ K L K E R "U" A MAIN TERMINAL CONTROL TERMINAL S WV 45° X "T" THICK Description: Pow erex CIB Modules are designed for use in switching applications. Each module consists of a three phase diode converter section, a three phase IGBT inverter section and a brake section. All components and interconnects are isolated from the heat sinking baseplate, offering simplified system assembly and thermal management. Features: □ Low Drive Power □ Low V CE(sat) □ Discrete Super-Fast Recovery (70ns) Free-Wheel Diodes □ High Frequency Operation (20-25 kHz) □ Isolated Baseplate for Easy Heat Sinking Applications: □ AC Motor Control □ Motion/Servo Control □ General Purpose Inverters □ Robotics Ordering Information: Example: Select the complete nine digit module part number you desire from the table below - i.e. CM50MD-12H is a 600V (V CES ), 50 Ampere CIB Power Module. Current Rating VCES Type Amperes Volts (x 50) CM 50 12 Dimensions Inches Millimeters A 4.53 115.0 B 2.36 60.0 C 1.18 30.0 D 0.18 4.5 E 4.13 105.0 F 0.20 5.0 G 0.31 8.0 H 0.59 15.0 J 0.68 17.2 K 0.10 2.54 L 0.40 10.16 M 0.49 12.5 Dimensions Inches Millimeters N 0.51 13.0 P 0.59 15.0 Q 1.14 29.0 R 2.28 58.0 S 0.16 4.0 T 0.02 0.6 U 0.22 5.5 V 0.08 2.0 W 0.02 0.6 X 0.35 9.0 Y 0.25 6.3 Z 0.47 12.0
Three Phase Converter + Three Phase Inverter + Brake Powerex, Inc., 200 Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272 Absolute Maximum Ratings, Tj = 25°C unless otherwise specified Characteristics Symbol CM50MD-12H Units Pow er Device Junction Temperature T j -40 to 150 °C Storage Temperature T stg -40 to 125 °C Mounting Torque, M4 Mounting Screws — 13 in-lb Module Weight (Typical) — 100 Grams Isolation Voltage, AC 1 minute, 60Hz V RMS 2500 Volts Converter Sector Repetitive Peak Reverse Voltage V RRM 800 Volts Recommended AC Input Voltage E a 220 Volts DC Output Current IO 50 Amperes Surge (Non-repetitive) Forward Current I FSM 500 Amperes I2t for Fusing I2t 1000 A 2s IGBT Inverter Sector Collector-Emitter Voltage (G-E Short) V CES 600 Volts Gate-Emitter Voltage (C-E Short) V GES ±20 Volts Collector Current IC 50 Amperes Collector Current (Pulse)* I CM 100 Amperes Emitter Current IE 50 Amperes Emitter Current (Pulse)* I EM 100 Amperes Maximum Collector Dissipation P C 104 Watts Brake Sector Collector-Emitter Voltage (G-E Short) V CES 600 Volts Gate-Emitter Voltage (C-E Short) V GES ±20 Volts Collector Current IC 50 Amperes Collector Current (Pulse)* I CM 100 Amperes Collector Dissipation P C 104 Watts Repetitive Peak Reverse Voltage (Clamp Diode Part) V RRM 600 Volts Forward Current (Clamp Diode Part) I FM 50 Amperes *Pulse width and repetition rate should be such that device junction temperature does not exceed maximum rating. ** Characteristics of the anti-parallel emitter-collector free-wheel diode.
Three Phase Converter + Three Phase Inverter + Brake Powerex, Inc., 200 Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272 Electrical and Mechanical Characteristics, Tj = 25°C unless otherwise specified Characteristics Symbol Test Conditions Min. Typ. Max. Units Converter Sector Repetitive Reverse Current I RRM VR = VRRM , Tj = 150°C— — 8 m A Forward Voltage Drop V FM IF = 50A — — 1.5 Volts Thermal Resistance (Junction-to-Fin) R th(j-f) Per Diode — — 1.7 °C/W Brake Sector Collector-Emitter Saturation Voltage V CE(sat) VGE = 15V, IC = 50A, Tj = 25°C— 2.2 2.8 Volts VGE = 15V, IC = 50A, Tj = 150°C ——— Volts Collector Cutoff Current I CES VCE = VCES , VGE = 0V — — 1 mA Gate-Emitter Threshold Voltage V GE(th) IC = 5.0mA, VCE = 10V 4.5 6.0 7.5 Volts Gate-Emitter Cutoff Current I GES VGE = VGES , VCE = 0V — — 0.5 µA Input Capacitance C ies —— 5.0 nF Output Capacitance C oes VGE = 0V, VCE = 10V — — 3.8 nF Reverse Transfer Capacitance C res —— 1.0 nF Total Gate Charge Q G VCC = 300V, IC = 50A, VGE = 15V — 150 — nC Forward Voltage Drop V FM IF = 50A — — 1.5 Volts Thermal Resistance (Junction-to-Fin) R th(j-f) Per IGBT — — 1.2 °C/W Per Clamp Diode — — 1.7 °C/W
Three Phase Converter + Three Phase Inverter + Brake Powerex, Inc., 200 Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272 Electrical and Mechanical Characteristics, Tj = 25°C unless otherwise specified Characteristics Symbol Test Conditions Min. Typ. Max. Units IGBT Inverter Sector Collector Cutoff Current I CES VCE = VCES , VGE = 0V — — 1 mA Gate-Emitter Threshold Voltage V GE(th) VCE = 10V, IC = 5.0mA 4.5 6.0 7.5 Volts Gate-Emitter Cutoff Current I GES VGE = VGES , VCE = 0V — — 0.5 µA Collector-Emitter Saturation Voltage V CE(sat) VGE = 15V, IC = 50A, Tj = 25°C— 2.2 2.8 Volts VGE = 15V, IC = 50A, Tj = 150°C ——— Volts Input Capacitance C ies —— 5.0 nF Output Capacitance C oes VGE = 0V , VCE = 10V — — 3.8 nF Reverse Transfer Capacitance C res —— 1.0 nF Total Gate Charge Q G VCC = 300V, IC = 50A, VGE = 15V — 150 — nC Resistive Turn-on Delay Time t d(on) VGE1 = VGE2 = 15V, — — 120 nS Load Rise Time t r VCC = 300V, IC = 50A, — — 300 nS Switching Turn-off Time t d(off) R g = 13Ω,— — 200 nS Times Fall Time t f Resistive Load — — 300 nS Emitter-Collector Voltage V EC IE = 50A, VGE = 0V — — 2.8 Volts Reverse Recovery Time t rr IE = 50A, VGE = 0V, — — 110 nS Reverse Recovery Charge Q rr diE/dt = -100A/µs— 0.14 — µC Thermal Resistance (Junction-to-Fin) R th(j-f) Per IGBT — — 1.2 °C/W Per FWDi — — 1.9 °C/W
Three Phase Converter + Three Phase Inverter + Brake Powerex, Inc., 200 Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272 COLLECTOR-EMITTER VOLTAGE, V CE , (VOLTS) COLLECTOR CURRENT, I C , (AMPERES) OUTPUT CHARACTERISTICS (TYPICAL) 02468 1 0 VGE = 20V 15 12 Tj = 25oC 100 GATE-EMITTER VOLTAGE, V GE , (VOLTS) COLLECTOR CURRENT, I C , (AMPERES) TRANSFER CHARACTERISTICS (TYPICAL) 048 1 2 1 6 2 0 100 VCE = 10V Tj = 25°C Tj = 125°C COLLECTOR-CURRENT, I C , (AMPERES) COLLECTOR-EMITTER SATURATION VOLTAGE, V CE(sat), (VOLTS) COLLECTOR-EMITTER SATURATION VOLTAGE CHARACTERISTICS (TYPICAL) 02 5 5 0 7 5 VGE = 15V Tj = 25°C Tj = 125°C 100 GATE-EMITTER VOLTAGE, V GE , (VOLTS) COLLECTOR-EMITTER SATURATION VOLTAGE, V CE(sat), (VOLTS) COLLECTOR-EMITTER SATURATION VOLTAGE CHARACTERISTICS (TYPICAL) 048 1 2 1 6 2 0 Tj = 25°C IC = 20A IC = 100A IC = 50A 100 EMITTER-COLLECTOR VOLTAGE, V EC , (VOLTS) FREE-WHEEL DIODE FORWARD CHARACTERISTICS (TYPICAL) 101 102 EMITTER CURRENT, I E, (AMPERES) Tj = 25°C COLLECTOR-EMITTER VOLTAGE, V CE , (VOLTS) CAPACITANCE, C ies, Coes, Cres, (nF) CAPACITANCE VS. V CE (TYPICAL) 10-1 100 102 101 100 10-1 VGE = 0V f = 1MHz 101 C ies C oes C res COLLECTOR CURRENT, I C , (AMPERES) SWITCHING TIME, (ns) HALF-BRIDGE SWITCHING CHARACTERISTICS (TYPICAL) 103 100 101 102 102 101 VCC = 300V VGE = ±15V R G = 13Ω Tj = 125°C td(off) td(on) tr tf EMITTER CURRENT, I E, (AMPERES) REVERSE RECOVERY TIME, t rr, (ns) REVERSE RECOVERY CHARACTERISTICS (TYPICAL) 103 100 101 102 102 101 trr Irr 101 100 10-1 REVERSE RECOVERY CURRENT, I rr, (AMPERES) di/dt = -100A/µsec Tj = 25°C GATE CHARGE, Q G , (nC) GATE-EMITTER VOLTAGE, V GE , (VOLTS) GATE CHARGE, V GE 05 0 100 150 200 250 VCC = 300V VCC = 200V
Three Phase Converter + Three Phase Inverter + Brake Powerex, Inc., 200 Hillis Street, Youngwood, Pennsylvania 15697-1800 (724) 925-7272 TIME, (s) NORMALIZED TRANSIENT THERMAL IMPEDANCE, Z th(j-f) TRANSIENT THERMAL IMPEDANCE CHARACTERISTICS (IGBT) 101 10-5 10-4 10-3 100 10-1 10-2 10-3 10-3 10-2 10-1 100 101 Single Pulse TC = 25°C Per Unit Base = Rth(j-f) = 1.2°C/W Zth = Rth • (NORMALIZED VALUE) 10-1 10-2 10-3 TIME, (s) NORMALIZED TRANSIENT THERMAL IMPEDANCE, Z th(j-f) TRANSIENT THERMAL IMPEDANCE CHARACTERISTICS (FWDi) 101 10-5 10-4 10-3 100 10-1 10-2 10-3 10-3 10-2 10-1 100 101 Single Pulse TC = 25°C Per Unit Base = Rth(j-f) = 1.9°C/W Zth = Rth • (NORMALIZED VALUE) 10-1 10-2 10-3