RGTVX6TS65
Datasheet
650V 80A Field Stop Trench IGBT
Outline
VCES
650V
IC(100°C)
80A
VCE(sat) (Typ.)
1.5V
PD
404W
TO-247N
(1)(2)(3)
Features
Inner Circuit
1) Low Collector - Emitter Saturation Voltage
(2)
2) High Speed Switching & Low Switching Loss
3) Short Circuit Withstand Time 2μs
(1) Gate
(2) Collector
(3) Emitter
(1)
4) Pb - free Lead Plating ; RoHS Compliant
(3)
Applications
Packaging Specifications
Solar Inverter
Packaging
UPS
Reel Size (mm)
-
Tape Width (mm)
-
Welding
Type
IH
PFC
Tube
Basic Ordering Unit (pcs)
450
Packing Code
C11
Marking
RGTVX6TS65
Absolute Maximum Ratings (at TC = 25°C unless otherwise specified)
Parameter
Symbol
Value
Unit
Collector - Emitter Voltage
VCES
650
V
Gate - Emitter Voltage
VGES
30
V
TC = 25°C
IC
144
A
TC = 100°C
IC
80
A
320
A
Collector Current
Pulsed Collector Current
Power Dissipation
ICP
*1
TC = 25°C
PD
404
W
TC = 100°C
PD
202
W
Tj
40 to +175
°C
Tstg
55 to +175
°C
Operating Junction Temperature
Storage Temperature
*1 Pulse width limited by Tjmax.
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1/9
2017.05 - Rev.A
Datasheet
RGTVX6TS65
Thermal Resistance
Parameter
Symbol
Rθ(j-c)
Thermal Resistance IGBT Junction - Case
Values
Min.
Typ.
Max.
-
-
0.37
Unit
°C/W
IGBT Electrical Characteristics (at Tj = 25°C unless otherwise specified)
Parameter
Collector - Emitter Breakdown
Voltage
Symbol
BVCES
Conditions
IC = 10μA, VGE = 0V
Values
Unit
Min.
Typ.
Max.
650
-
-
V
Collector Cut - off Current
ICES
VCE = 650V, VGE = 0V
-
-
10
μA
Gate - Emitter Leakage Current
IGES
VGE = 30V, VCE = 0V
-
-
±200
nA
VGE(th)
VCE = 5V, IC = 57.1mA
5.0
6.0
7.0
V
Tj = 25°C
-
1.5
1.9
V
Tj = 175°C
-
1.85
-
Gate - Emitter Threshold
Voltage
IC = 80A, VGE = 15V
Collector - Emitter Saturation
Voltage
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VCE(sat)
2/9
2017.05 - Rev.A
Datasheet
RGTVX6TS65
IGBT Electrical Characteristics (at Tj = 25°C unless otherwise specified)
Parameter
Symbol
Conditions
Values
Min.
Typ.
Max.
Input Capacitance
Cies
VCE = 30V
-
4810
-
Output Capacitance
Coes
VGE = 0V
-
184
-
Reverse Transfer Capacitance
Cres
f = 1MHz
-
79
-
Total Gate Charge
Qg
VCE = 400V
-
171
-
Gate - Emitter Charge
Qge
IC = 80A
-
33
-
Gate - Collector Charge
Qgc
VGE = 15V
-
59
-
Turn - on Delay Time
td(on)
IC = 80A, VCC = 400V
-
45
-
tr
VGE = 15V, RG = 10Ω
-
29
-
Tj = 25°C
-
201
-
Inductive Load
-
34
-
Rise Time
Turn - off Delay Time
Fall Time
td(off)
tf
Turn - on Switching Loss
Eon
*Eon includes diode
-
2.65
-
Turn - off Switching Loss
Eoff
reverse recovery
-
1.80
-
Turn - on Delay Time
td(on)
IC = 80A, VCC = 400V
-
49
-
tr
VGE = 15V, RG = 10Ω
-
34
-
Tj = 175°C
-
218
-
Inductive Load
-
80
-
Rise Time
Turn - off Delay Time
Fall Time
td(off)
tf
Turn - on Switching Loss
Eon
*Eon includes diode
-
2.74
-
Turn - off Switching Loss
Eoff
reverse recovery
-
2.31
-
Unit
pF
nC
ns
mJ
ns
mJ
IC = 320A, VCC = 520V
Reverse Bias Safe Operating Area
RBSOA VP = 650V, VGE = 15V
FULL SQUARE
-
RG = 100Ω, Tj = 175°C
VCC ≦ 360V
Short Circuit Withstand Time
tsc
VGE = 15V
2
-
-
μs
Tj = 25°C
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2017.05 - Rev.A
Datasheet
RGTVX6TS65
Electrical Characteristic Curves
Fig.2 Collector Current vs. Case Temperature
450
160
400
140
350
Collector Current : IC [A]
Power Dissipation : PD [W]
Fig.1 Power Dissipation vs. Case Temperature
300
250
200
150
100
120
100
80
60
40
Tj≦175ºC
VGE≧15V
20
50
0
0
0
25
50
75
100
125
150
175
0
Case Temperature : TC [ºC ]
50
75
100
125
150
175
Case Temperature : TC [ºC]
Fig.3 Forward Bias Safe Operating Area
Fig.4 Reverse Bias Safe Operating Area
400
1000
10µs
100
10
100µs
1
0.1
350
Collector Current : IC [A]
Collector Current : IC [A]
25
TC= 25ºC
Single Pulse
300
250
200
150
100
Tj≦175ºC
VGE=15V
50
0
0.01
1
10
100
0
1000
Collector To Emitter Voltage : VCE[V]
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200
400
600
800
Collector To Emitter Voltage : VCE[V]
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2017.05 - Rev.A
Datasheet
RGTVX6TS65
Electrical Characteristic Curves
320
300
280
260
240
220
200
180
160
140
120
100
80
60
40
20
0
Tj= 25ºC
Fig.6 Typical Output Characteristics
VGE= 12V
VGE= 20V
Collector Current : IC [A]
Collector Current : IC [A]
Fig.5 Typical Output Characteristics
VGE= 15V
VGE= 10V
VGE= 8V
0
1
2
3
4
320
300
280
260
240
220
200
180
160
140
120
100
80
60
40
20
0
5
Tj= 175ºC
VGE= 20V
VGE= 15V
VGE= 12V
VGE= 10V
VGE= 8V
0
Collector To Emitter Voltage : VCE[V]
2
3
4
5
Collector To Emitter Voltage : VCE[V]
Fig.7 Typical Transfer Characteristics
Fig.8 Typical Collector To Emitter Saturation Voltage
vs. Junction Temperature
60
4
Collector To Emitter Saturation Voltage
: VCE(sat) [V]
VCE= 10V
50
Collector Current : IC [A]
1
40
30
20
Tj= 175ºC
10
Tj= 25ºC
0
0
2
4
6
8
10
3
IC= 160A
IC= 80A
2
IC= 40A
1
0
25
12
Gate To Emitter Voltage : VGE [V]
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VGE= 15V
50
75
100
125
150
175
Junction Temperature : Tj [ºC]
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2017.05 - Rev.A
Datasheet
RGTVX6TS65
Electrical Characteristic Curves
Fig.9 Typical Collector To Emitter Saturation Voltage
vs. Gate To Emitter Voltage
Collector To Emitter Saturation Voltage
: VCE(sat) [V]
Collector To Emitter Saturation Voltage
: VCE(sat) [V]
20
Tj= 25ºC
15
IC= 160A
IC= 80A
10
IC= 40A
5
0
5
10
15
Fig.10 Typical Collector To Emitter Saturation Voltage
vs. Gate To Emitter Voltage
20
Tj= 175ºC
15
IC= 160A
10
IC= 80A
IC= 40A
5
0
20
5
10
Gate To Emitter Voltage : VGE [V]
15
20
Gate To Emitter Voltage : VGE [V]
Fig.12 Typical Switching Time
vs. Gate Resistance
Fig.11 Typical Switching Time
vs. Collector Current
1000
1000
td(off)
Switching Time [ns]
Switching Time [ns]
td(off)
100
tf
td(on)
10
tr
tf
100
td(on)
tr
10
VCC=400V, IC=80A
VGE=15V, Tj=175ºC
Inductive load
VCC=400V, VGE=15V
RG=10Ω, Tj=175ºC
Inductive load
1
0
20
40
60
80
1
100 120 140 160
0
Collector Current : IC [A]
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10
20
30
40
50
Gate Resistance : RG [Ω]
6/9
2017.05 - Rev.A
Datasheet
RGTVX6TS65
Electrical Characteristic Curves
Fig.13 Typical Switching Energy Losses
vs. Collector Current
Fig.14 Typical Switching Energy Losses
vs. Gate Resistance
10
Eoff
1
Eon
0.1
VCC=400V, VGE=15V
RG=10Ω, Tj=175ºC
Inductive load
Switching Energy Losses [mJ]
Switching Energy Losses [mJ]
10
Eon
Eoff
1
0.1
VCC=400V, IC=80A
VGE=15V, Tj=175ºC
Inductive load
0.01
0.01
0
20
40
60
80
0
100 120 140 160
10
Collector Current : IC [A]
30
40
50
Gate Resistance : RG [Ω]
Fig.16 Typical Gate Charge
Fig.15 Typical Capacitance
vs. Collector To Emitter Voltage
10000
1000
Coes
100
Cres
10
f=1MHz
VGE=0V
Tj=25ºC
1
0.01
Gate To Emitter Voltage : VGE [V]
15
Cies
Capacitance [pF]
20
10
5
VCC=400V
IC=80A
Tj=25ºC
0
0.1
1
10
100
0
Collector To Emitter Voltage : VCE[V]
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20
40
60
80 100 120 140 160 180
Gate Charge : Qg [nC]
7/9
2017.05 - Rev.A
Datasheet
RGTVX6TS65
Electrical Characteristic Curves
Fig.17 Typical IGBT Transient Thermal Impedance
Transient Thermal Impedance
: ZthJC [ºC/W]
1
0.1
0.2
D= 0.5
0.1
PDM
0.01
0.001
1E-6
Single Pulse
t1
0.01
0.05 0.02
1E-5
C1
C2
C3
R1
R2
R3
1.112m 3.960m 3.962m 80.43m 46.72m 112.9m
1E-4
1E-3
1E-2
t2
Duty=t1/t2
Peak Tj=PDM×ZthJCTC
1E-1
1E+0
Pulse Width : t1[s]
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2017.05 - Rev.A
Datasheet
RGTVX6TS65
Inductive Load Switching Circuit and Waveform
Gate Drive Time
90%
D.U.T.
VGE
10%
VG
90%
Fig.18 Inductive Load Circuit
IC
10%
td(on)
tr
ton
td(off)
tf
toff
VCE
10%
Eon
Eoff
VCE(sat)
Fig.19 Inductive Load Waveform
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9/9
2017.05 - Rev.A
Notice
Notes
1) The information contained herein is subject to change without notice.
2) Before you use our Products, please contact our sales representative and verify the latest specifications :
3) Although ROHM is continuously working to improve product reliability and quality, semiconductors can break down and malfunction due to various factors.
Therefore, in order to prevent personal injury or fire arising from failure, please take safety
measures such as complying with the derating characteristics, implementing redundant and
fire prevention designs, and utilizing backups and fail-safe procedures. ROHM shall have no
responsibility for any damages arising out of the use of our Poducts beyond the rating specified by
ROHM.
4) Examples of application circuits, circuit constants and any other information contained herein are
provided only to illustrate the standard usage and operations of the Products. The peripheral
conditions must be taken into account when designing circuits for mass production.
5) The technical information specified herein is intended only to show the typical functions of and
examples of application circuits for the Products. ROHM does not grant you, explicitly or implicitly,
any license to use or exercise intellectual property or other rights held by ROHM or any other
parties. ROHM shall have no responsibility whatsoever for any dispute arising out of the use of
such technical information.
6) The Products are intended for use in general electronic equipment (i.e. AV/OA devices, communication, consumer systems, gaming/entertainment sets) as well as the applications indicated in
this document.
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R1102A