80-M012PNB008SB-K619C41
preliminary datasheet
MiniSkiip 0
Output Inverter Application
General conditions
3phase SPWM
V
GEon
= 15 V
V
GEoff
= -15 V
R
gon
= 32
Ω
R
goff
= 32
Ω
1200V/8A
Figure 1
Typical average static loss as a function of output current
P
loss
= f(I
out
)
25
Ploss (W)
IGBT
Figure 2
Typical average static loss as a function of output current
P
loss
= f(I
out
)
25
Ploss (W)
FWD
Mi*cosfi = 1
20
20
Mi*cosf i= -1
15
15
10
10
5
5
Mi*cosfi = -1
0
0
2
4
6
8
10
12
14
Iout (A)
16
0
0
2
4
6
8
10
12
Mi*cosfi = 1
14
Iout (A)
16
T
j
=
150
°C
T
j
=
150
°C
Mi*cosφ from -1 to 1 in steps of 0,2
Figure 3
Typical average switching loss
as a function of output current
Ploss (W)
25,0
Mi*cosφ from -1 to 1 in steps of 0,2
IGBT
P
loss
= f(I
out
)
Figure 4
Typical average switching loss
as a function of output current
Ploss (W)
7,0
FWD
P
loss
= f(I
out
)
6,0
20,0
fsw = 16kHz
fsw = 16kHz
5,0
15,0
4,0
3,0
10,0
2,0
5,0
1,0
fsw = 2kHz
0,0
0
2
4
6
8
10
12
14
Iout (A)
16
fsw = 2kHz
0,0
0
2
4
6
8
10
12
14
Iout (A)
16
T
j
=
DC link =
f
sw
from
150
°C
T
j
=
DC link =
f
sw
from
150
°C
600
V
2 kHz to 16 kHz in steps of factor 2
600
V
2 kHz to 16 kHz in steps of factor 2
copyright Vincotech
1
Revision: 1
80-M012PNB008SB-K619C41
preliminary datasheet
MiniSkiip 0
Output Inverter Application
Phase
I
out
= f(Mi*cos
φ)
Th = 60°C
Th = 100°C
1200V/8A
Figure 5
Typical available 50Hz output current
as a function Mi*cosφ
12
Iout (A)
Figure 6
Typical available 50Hz output current
as a function of switching frequency
Iout (A)
12
Phase
I
out
= f(f
sw
)
Th = 60°C
10
10
Th = 100°C
8
8
6
6
4
4
2
2
0
-1,0
-0,8
-0,6
-0,4
-0,2
0,0
0,2
0,4
0,6
0,8
1,0
Mi*cos
φ
0
1
10
fsw (kHz)
100
T
j
=
DC link =
f
sw
=
T
h
from
Figure 7
150
°C
T
j
=
150
°C
600
V
4
kHz
60 °C to 100 °C in steps of 5 °C
Phase
DC link = 600
V
Mi*cos
φ
= 0,8
T
h
from
60 °C to 100 °C in steps of 5 °C
Figure 8
Typical available 0Hz output current as a function
I
outpeak
= f(f
sw
)
of switching frequency
Iout (Apeak)
12
Phase
Typical available 50Hz output current as a function of
I
out
= f(f
sw
, Mi*cos
φ)
Mi*cos
φ
and switching frequency
-1,00
-0,80
Iout (A)
-0,60
-0,40
-0,20
10
Th = 60°C
11,0-12,0
10,0-11,0
9,0-10,0
8,0-9,0
7,0-8,0
6,0-7,0
5,0-6,0
4,0-5,0
8
Mi*cosfi
0,00
0,20
6
4
0,40
Th = 100°C
0,60
2
0,80
1,00
1
2
4
8
(kHz)
fsw
16
32
64
0
1
10
fsw (kHz)
100
T
j
=
DC link =
T
h
=
150
600
80
°C
V
°C
T
j
=
DC link =
T
h
from
Mi =
150
°C
600
V
60 °C to 100 °C in steps of 5 °C
0
copyright Vincotech
2
Revision: 1
80-M012PNB008SB-K619C41
preliminary datasheet
MiniSkiip 0
Output Inverter Application
Inverter
Figure 10
Typical efficiency as a function of output power
efficiency=f(P
out
)
efficiency (%)
100,0
99,5
99,0
1200V/8A
Figure 9
Typical available peak output power as a function of
P
out
=f(T
h
)
heatsink temperature
Pout (kW)
6,0
Inverter
2kHz
5,0
16kHz
4,0
98,5
2kHz
98,0
3,0
97,5
97,0
2,0
96,5
96,0
1,0
95,5
0,0
60
65
70
75
80
85
90
95
100
Th (
o
C)
95,0
0,0
1,0
2,0
3,0
4,0
5,0
6,0
7,0
8,0
9,0
Pout (kW)
16kHz
T
j
=
DC link =
Mi =
cos
φ=
f
sw
from
Figure 11
150
°C
T
j
=
DC link =
Mi =
cos
φ=
f
sw
from
Inverter
150
°C
600
V
1
0,80
2 kHz to 16 kHz in steps of factor 2
600
V
1
0,80
2 kHz to 16 kHz in steps of factor 2
Typical available overload factor as a function of
P
peak
/ P
nom
=f(P
nom
,f
sw
)
motor power and switching frequency
Overload (%)
400
350
300
250
200
150
Motor nominal power (HP/kW)
Switching frequency (kHz)
100
1,50 / 1,10
1
2
4
8
16
399
399
399
399
399
2,00 / 1,47
300
300
300
300
300
3,00 / 2,21
200
200
200
200
200
5,00 / 3,68
120
120
120
120
120
7,50 / 5,52
0
0
0
0
0
10,00 / 7,36
0
0
0
0
0
T
j
=
DC link =
Mi =
cos
φ=
f
sw
from
T
h
=
150
600
1
°C
V
0,8
1 kHz to 16kHz in steps of factor 2
80
°C
Motor eff = 0,85
copyright Vincotech
3
Revision: 1