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PDF MHPM7B8A120A Data sheet ( Hoja de datos )

Número de pieza MHPM7B8A120A
Descripción Hybrid Power Module
Fabricantes Motorola Semiconductors 
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MOTOROLA
SEMICONDUCTOR TECHNICAL DATA
Order this document
by MHPM7B8A120A/D
Hybrid Power Module
Integrated Power Stage for 1.0 hp Motor Drives
This module integrates a 3–phase input rectifier bridge, 3–phase output
inverter and brake transistor/diode in a single convenient package. The output
inverter utilizes advanced insulated gate bipolar transistors (IGBT) matched
with free–wheeling diodes to give optimal dynamic performance. It has been
configured for use as a three–phase motor drive module or for many other
power switching applications. The top connector pins have been designed for
easy interfacing to the user’s control board.
Short Circuit Rated 10 µs @ 25°C
Pin-to-Baseplate Isolation Exceeds 2500 Vac (rms)
Convenient Package Outline
UL Recognized and Designed to Meet VDE
Access to Positive and Negative DC Bus
MHPM7B8A120A
Motorola Preferred Device
8.0 AMP, 1200 VOLT
HYBRID POWER MODULE
PLASTIC PACKAGE
CASE 440-01, Style 1
MAXIMUM DEVICE RATINGS (TJ = 25°C unless otherwise noted)
Rating
INPUT RECTIFIER BRIDGE
Repetitive Peak Reverse Voltage
Average Output Rectified Current (1)
Peak Non-repetitive Surge Current
OUTPUT INVERTER
IGBT Reverse Voltage
Gate-Emitter Voltage
Continuous IGBT Collector Current
Peak IGBT Collector Current – (PW = 1.0 ms) (2)
Continuous Free-Wheeling Diode Current
Peak Free-Wheeling Diode Current – (PW = 1.0 ms) (2)
IGBT Power Dissipation
Free-Wheeling Diode Power Dissipation
IGBT Junction Temperature Range
Free-Wheeling Diode Junction Temperature Range
(1) 1 cycle = 50 or 60 Hz
(2) 1 ms = 1.0% duty cycle
Preferred devices are Motorola recommended choices for future use and best overall value.
Symbol
VRRM
IO
IFSM
VCES
VGES
IC
IC(pk)
IF
IF(pk)
PD
PD
TJ
TJ
Value
1200
8.0
200
1200
± 20
8.0
16
8.0
16
50
30
– 40 to +125
– 40 to +125
Unit
V
A
A
V
V
A
A
A
A
W
W
°C
°C
© MMoOtoTroOla,RInOc.L1A995
MHPM7B8A120A
1

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MHPM7B8A120A pdf
Typical Characteristics
16 16
12 12
TJ = 125°C
25°C
TJ = 125°C
25°C
88
44
0
0 0.5 1.0 1.5
VF, FORWARD VOLTAGE (V)
Figure 2. Input Bridge Forward Current IF versus
Forward Voltage VF
0
0 1234
VF, FORWARD VOLTAGE (V)
Figure 3. Output Inverter Forward Current IF
versus Forward Voltage VF
1000
trr
100
TJ = 125°C
25°C
10 TJ = 125°C
Irr 25°C
–di/dt = 50 A/µs
1
0 2 4 6 8 10 12
IF, FORWARD CURRENT (A)
Figure 4. Output Inverter Reverse Recovery trr, Irr
versus Forward Current IF
25
VGE = 18 V
20
15 V
TJ = 25°C
15 12 V
10
5
9V
0
0 4 8 12 16 20
VCE, COLLECTOR–EMITTER VOLTAGE (V)
Figure 5. Output Inverter Collector Currrent IC
versus Collector–Emitter Voltage VCE
25
VGE = 18 V
20
15 V
TJ = 125°C
10
IC = 4 A
8
8 A 16 A
TJ = 25°C
15
6
12 V
10 4
5 9V
0
0 4 8 12 16 20
VCE, COLLECTOR–EMITTER VOLTAGE (V)
Figure 6. Ouput Inverter Collector Current IC
versus Collector–Emitter Voltage VCE
2
0
8 10 12 14 16 18
VGE, GATE–EMITTER VOLTAGE (V)
Figure 7. Inverter Collector–Emitter Voltage VCE
versus Gate–Emitter Voltage VGE
MOTOROLA
MHPM7B8A120A
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