C&H Technology CM800HA-34H User Manual

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MITSUBISHI HVIGBT MODULES
CM800HA-34H
HVIGBT (High Voltage Insulated Gate Bipolar Transistor) Modules
INSULATED TYPE
CM800HA-34H
IC...................................................................800A
HIGH POWER SWITCHING USE
V
CES ....................................................... 1700V
Insulated T ype
1-element in a pack
APPLICATION
Inverters, Converters, DC choppers, Induction heating, DC to DC converters.
OUTLINE DRAWING & CIRCUIT DIAGRAM Dimensions in mm
130 114
4 - M8 NUTS
20
±0.25
30
140
124
6 - φ 7 MOUNTING HOLES
14.5
C
C
G E
E
CIRCUIT DIAGRAM
35
11
C
E
5
C
CM
E
3 - M4 NUTS
57
±0.25
C
16.5
18
E
18.5
2.5
61.5
57
±0.25
C
E
G
38
5
HVIGBT MODULES (High Voltage Insulated Gate Bipolar Transistor Modules)
28
LABEL
31.5
Mar. 2003
MITSUBISHI HVIGBT MODULES
CM800HA-34H
HIGH POWER SWITCHING USE
HVIGBT (High Voltage Insulated Gate Bipolar Transistor) Modules
MAXIMUM RATINGS (Tj = 25°C)
Symbol Item Conditions UnitRatings
CES
V VGES IC ICM IE IEM PC Tj Tstg Viso
Collector-emitter voltage Gate-emitter voltage
Collector current
(Note 2)
Emitter current
(Note 2)
Maximum collector dissipation
(Note 3)
Junction temperature Storage temperature Isolation voltage
Mounting torque
Mass
GE = 0V
V
CE = 0V
V DC, T
C = 95°C
Pulse (Note 1)
Pulse (Note 1)
C = 25°C, IGBT part
T
— Charged part to base plate, rms, sinusoidal, AC 60Hz 1min. Main terminals screw M8 Mounting screw M6 Auxiliary terminals screw M4 Typical value
–40 ~ +150 –40 ~ +125
6.67 ~ 13.00
2.84 ~ 6.00
0.88 ~ 2.00
INSULATED TYPE
1700
±20 800
1600
800 1600 9200
4000
1.5
V V A A A A
W
°C °C
V N·m N·m N·m
kg
ELECTRICAL CHARACTERISTICS (Tj = 25°C)
Symbol
I
CES
V
GE(th)
IGES VCE(sat)
Cies Coes Cres QG td (on) tr td (off) tf VEC trr Qrr Rth(j-c)Q Rth(j-c)R Rth(c-f)
Note 1. Pulse width and repetition rate should be such that the device junction temp. (Tj) does not exceed Tjmax rating.
Collector cutoff current Gate-emitter threshold voltage Gate-leakage current Collector-emitter saturation voltage Input capacitance Output capacitance Reverse transfer capacitance Total gate charge Turn-on delay time Turn-on rise time Turn-off delay time Turn-off fall time
(Note 2)
Emitter-collector voltage
(Note 2)
Reverse recovery time
(Note 2)
Reverse recovery charge Thermal resistance
Contact thermal resistance
2. I
E, VEC, trr, Qrr & die/dt represent characteristics of the anti-parallel, emitter to collector free-wheel diode.
3. Junction temperature (T
4. Pulse width and repetition rate should be such as to cause negligible temperature rise.
Item Conditions
CE = VCES, VGE = 0V
V I
C = 80mA, VCE = 10V
GE = VGES, VCE = 0V
V T
j = 25°C
T
j = 125°C CE = 10V
V V
GE = 0V CC = 850V, IC = 800A, VGE = 15V
V V
CC = 850V, IC = 800A
V
GE1 = VGE2 = 15V G = 2.5
R
C = 800A, VGE = 15V (Note 4)
I
Resistive load switching operation I
E = 800A, VGE = 0V
I
E = 800A
die / dt = –1600A / µs Junction to case, IGBT part Junction to case, FWDi part Case to fin, conductive grease applied
j) should not increase beyond 150°C.
Min Typ Max
4.5
Limits
5.5
— — — — — — — — — — — — — — — — —
2.75
3.30 93
13.3
5.1
4.4 — — — —
2.40 —
135 — —
0.012
0.0135
0.042
20
6.5
0.5
3.58 — — — — —
1.20
1.50
2.00
0.60
3.12
2.00 —
Unit
mA
V
µA
V
nF nF nF
µC µs µs µs µs
V
µs µC
K/W K/W K/W
HVIGBT MODULES (High Voltage Insulated Gate Bipolar Transistor Modules)
Mar. 2003
HVIGBT (High Voltage Insulated Gate Bipolar Transistor) Modules
PERFORMANCE CURVES
MITSUBISHI HVIGBT MODULES
CM800HA-34H
HIGH POWER SWITCHING USE
INSULATED TYPE
)
A
(
C
1600
1200
OUTPUT CHARACTERISTICS
Tj = 25°C
V
GE
= 14V
V
GE
= 15V
V
GE
= 20V
(
TYPICAL
V
V
GE
GE
800
400
COLLECTOR CURRENT I
0
468
2
COLLECTOR-EMITTER VOLTAGE V
COLLECTOR-EMITTER SATURATION
)
V
(
CE(sat)
VOLTAGE CHARACTERISTICS
5
V
GE
4
= 15V
(
TYPICAL
3
)
= 12V
= 13V
)
TRANSFER CHARACTERISTICS
(
TYPICAL
)
1600
V
CE
V
GE
= 11V
V
GE
= 10V
)
A
(
C
1200
= 10V
800
V
GE
= 9V
V
GE
= 8V
V
GE
= 7V
100
)
CE
(V
400
COLLECTOR CURRENT I
0
GATE-EMITTER VOLTAGE VGE (V
Tj = 25°C
j
= 125°C
T
200481216
)
COLLECTOR-EMITTER SATURATION
)
V
(
CE(sat)
VOLTAGE CHARACTERISTICS
10
Tj = 25°C
8
6
(
TYPICAL
)
IC = 1600A
IC = 800A
2
COLLECTOR-EMITTER
1
SATURATION VOLTAGE V
0
0 400 800 1200 1600 0 20161284
COLLECTOR CURRENT IC (A
FREE-WHEEL DIODE
FORWARD CHARACTERISTICS
)
V
5
(
EC
(
TYPICAL
4
3
2
1
0
EMITTER-COLLECTOR VOLTAGE V
0 16001200800400
EMITTER CURRENT IE (A
Tj = 25°C T
)
Tj = 25°C T
j
= 125°C
j
= 125°C
)
4
COLLECTOR-EMITTER
2
SATURATION VOLTAGE V
0
)
)
nF
(
res
, C
oes
, C
ies
CAPACITANCE C
GATE-EMITTER VOLTAGE VGE (V
CAPACITANCE CHARACTERISTICS
3
10
V
GE
7 5
ies, Coes
C
3
res
C
2
2
10
7 5
3 2
1
10
7 5
3 2
0
10
–1
2310
(
TYPICAL
= 0V, Tj = 25°C
: f = 100kHz : f = 1MHz
5710023 5710123 5710
COLLECTOR-EMITTER VOLTAGE V
IC = 320A
)
)
C
ies
C
oes
C
res
2
)
CE
(V
Mar. 2003
HVIGBT (High Voltage Insulated Gate Bipolar Transistor) Modules
MITSUBISHI HVIGBT MODULES
CM800HA-34H
HIGH POWER SWITCHING USE
INSULATED TYPE
SWITCHING TIME CHARACTERISTICS
5
VCC = 850V, VGE = ±15V R
G
= 2.5Ω, Tj = 125°C
3
) (
µs
Inductive load
2
0
10
7 5
3
(
TYPICAL
)
t
d(off)
t
d(on)
t
r
2
HALF-BRIDGE
t
SWITCHING TIMES
–1
10
f
7 5
5
710
2
23 5710
3
COLLECTOR CURRENT IC (A
HALF-BRIDGE
SWITCHING ENERGY CHARACTERISTICS
1.0 VCC = 850V, VGE = ±15V,
R
G
)
J/P
(
= 2.5, Tj = 125°C,
Inductive load
0.8
(
TYPICAL
)
23 5
)
REVERSE RECOVERY CHARACTERISTICS
OF FREE-WHEEL DIODE
(
5
) (
VCC = 850V, Tj = 125°C
µs
3
Inductive load
rr
V
GE
2
0
10
= ±15V, RG = 2.5
TYPICAL
)
t
rr
7 5
I
3
rr
2
–1
10
7
REVERSE RECOVERY TIME t
5
5
710
2
23 5710
3
EMITTER CURRENT IE (A
HALF-BRIDGE
SWITCHING ENERGY CHARACTERISTICS
2.5 VCC = 850V, IC = 800A,
V
GE
)
J/P
(
2.0
= ±15V, Tj = 125°C,
Inductive load
(
TYPICAL
)
23 5
)
)
5
A
(
rr
3 2
3
10 7
5 3
2
2
10 7
REVERSE RECOVERY CURRENT I
5
0.6
0.4
0.2
SWITCHING ENERGY
0
0 800400 1200 1600
CURRENT (A
GATE CHARGE CHARACTERISTICS
20
)
V
(
GE
16
VCC = 850V I
C
= 800A
(
TYPICAL
)
12
8
4
GATE-EMITTER VOLTAGE V
0
2000 4000
GATE CHARGE QG (nC
E
on
E
off
E
rec
)
1.5
1.0
0.5
SWITCHING ENERGY
0
010515203025
GATE RESISTANCE (Ω
E
on
E
off
E
rec
)
TRANSIENT THERMAL
IMPEDANCE CHARACTERISTICS
1
10
Single Pulse
7 5
T
C
= 25°C
3
R
th(j – c)Q
th(j – c)
2
R
0
10
7 5
3 2
–1
10
7 5
NORMALIZED TRANSIENT
3
THERMAL IMPEDANCE Z
2
–2
10
8000 1000060000
10
–3
)
= 0.0135K/W
th(j – c)R
= 0.042K/W
10
–2
23 57 23 57 23 57
TIME (s
–1
10
)
10
0
Mar. 2003
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