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PDF APTGF50TA120PG Data sheet ( Hoja de datos )

Número de pieza APTGF50TA120PG
Descripción Triple phase leg NPT IGBT Power Module
Fabricantes Microsemi Corporation 
Logotipo Microsemi Corporation Logotipo



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APTGF50TA120PGwww.DataSheet4U.com
Triple phase leg
NPT IGBT Power Module
VCES = 1200V
IC = 50A @ Tc = 80°C
Application
Welding converters
VBUS1
VBUS2
VBUS3
Switched Mode Power Supplies
Uninterruptible Power Supplies
G1 G3 G5
Motor control
Features
Non Punch Through (NPT) FAST IGBT
E1 E3 E5
UVW
- Low voltage drop
- Low tail current
- Switching frequency up to 50 kHz
G2 G4 G6
- Soft recovery parallel diodes
- Low diode VF
E2 E4 E6
- Low leakage current
0/VBUS1
0/VBUS2
0/VBUS3
- Avalanche energy rated
- RBSOA and SCSOA rated
Kelvin emitter for easy drive
Very low stray inductance
- Symmetrical design
- Lead frames for power connections
High level of integration
Benefits
Outstanding performance at high frequency
operation
Direct mounting to heatsink (isolated package)
VBUS 1
VBUS 2
VBUS 3
G1 G3 G5
0/VBUS 1 E1 0/VBUS 2 E3 0/VBUS 3 E5
E2 E4 E6
G2 G4 G6
Low junction to case thermal resistance
Solderable terminals both for power and signal for
easy PCB mounting
Very low (12mm) profile
Easy paralleling due to positive TC of VCEsat
Each leg can be easily paralleled to achieve a phase
leg of three times the current capability
U VW
Module can be configured as a three phase bridge
Module can be configured as a boost followed by a
full bridge
RoHS compliant
Absolute maximum ratings
Symbol
Parameter
Max ratings
Unit
VCES
IC
ICM
VGE
PD
RBSOA
Collector - Emitter Breakdown Voltage
Continuous Collector Current
Pulsed Collector Current
Gate – Emitter Voltage
Maximum Power Dissipation
Reverse Bias Safe Operating Area
Tc = 25°C
Tc = 80°C
Tc = 25°C
Tc = 25°C
Tj = 150°C
1200
75
50
150
±20
312
100A @ 1200V
V
A
V
W
These Devices are sensitive to Electrostatic Discharge. Proper Handing Procedures Should Be Followed. See application note
APT0502 on www.microsemi.com
www.microsemi.com
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APTGF50TA120PG pdf
APTGF50TA120PGwww.DataSheet4U.com
Turn-On Delay Time vs Collector Current
45
VCE = 600V
40 RG = 5
VGE = 15V
35
30
25
0
25 50 75 100 125
ICE, Collector to Emitter Current (A)
Current Rise Time vs Collector Current
180
140
VCE = 600V
RG = 5
100
60 VGE=15V
20
0
25 50 75 100 125
ICE, Collector to Emitter Current (A)
Turn-On Energy Loss vs Collector Current
28
24
VCE = 600V
RG = 5
TJ=125°C,
VGE=15V
20
16
12
TJ=25°C,
8 VGE=15V
4
0
0 25 50 75 100 125
ICE, Collector to Emitter Current (A)
Switching Energy Losses vs Gate Resistance
18
16
VCE = 600V
VGE = 15V
14 TJ= 125°C
12
10 Eon, 50A
8
Eoff, 50A
6 Eon, 25A
4
2 Eoff, 25A
0
0 10 20 30 40 50
Gate Resistance (Ohms)
Turn-Off Delay Time vs Collector Current
400
350
VGE=15V,
TJ=125°C
300
250
VCE = 600V
RG = 5
200
VGE=15V,
TJ=25°C
0 25 50 75 100
ICE, Collector to Emitter Current (A)
125
Current Fall Time vs Collector Current
50
40 TJ = 125°C
30
20
0
TJ = 25°C
VCE = 600V, VGE = 15V, RG = 5
25 50 75 100 125
ICE, Collector to Emitter Current (A)
Turn-Off Energy Loss vs Collector Current
8
VCE = 600V
VGE = 15V
6 RG = 5
TJ = 125°C
4
TJ = 25°C
2
0
0 25 50 75 100 125
ICE, Collector to Emitter Current (A)
Switching Energy Losses vs Junction Temp.
8
VCE = 600V
VGE = 15V
Eon, 50A
6 RG = 5
4
Eoff, 50A
2
Eon, 25A
Eoff, 25A
0
0 25 50 75 100 125
TJ, Junction Temperature (°C)
www.microsemi.com
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