10-FZ06BIA041FS01-P898E10
preliminary datasheet
flowSOL 0 BI
DC Boost Application
General conditions
V
GEon
V
GEoff
R
gon
R
goff
BOOST
=
=
=
=
10 V
0V
8
Ω
8
Ω
600V / 41mOhm
Figure 1.
Typical average static loss as a function of
input current Ii
RMS
P
loss
=f(I
in
)
120
Ploss (W)
MOSFET
Figure 2.
Typical average static loss as a function of
input current Ii
RMS
P
loss
=f(I
in
)
120
Ploss (W)
FWD
V
in
/V
out
=0,2
100
100
V
in
/V
out
=1
80
80
60
60
40
40
20
20
V
in
/V
out
=1
0
0
10
20
30
40
Iin (A)
50
0
0
10
20
30
V
in
/V
out
=0,2
40
Iin (A)
50
Conditions:
T
j
=
125
°C
Ratio of input DC voltage to output DC voltage
parameter: V
in
/V
out
from
0,2
in
0,2
Figure 3.
Typical average switching loss as a function of
input current
P
loss
=f(I
in
)
60
Ploss (W)
to
steps
1,0
MOSFET
Conditions:
T
j
=
125
°C
Ratio of input DC voltage to output DC voltage
parameter: V
in
/V
out
from
0,2
in
0,2
Figure 4.
Typical average switching loss as a function of
input current
P
loss
=f(I
in
)
7
Ploss (W)
to
steps
1,0
FWD
50
f
sw
="to" kHz
6
f
sw
="to" kHz
5
40
4
30
3
20
2
10
1
f
sw
="from" kHz
0
0
10
20
30
40
Iin (A)
50
0
0
10
20
30
40
Iin (A)
50
f
sw
="from" kHz
Conditions:
Sw. freq.
Tj=
125
V
out
=
350
fsw from
16
in steps of factor 2
°C
V
kHz to
128
kHz
Conditions:
Sw. freq.
Tj=
125
V
out
=
350
fsw from
16
in steps of factor 2
°C
V
kHz to
128
kHz
Copyright by Vincotech
1
Revision: 1
10-FZ06BIA041FS01-P898E10
preliminary datasheet
flowSOL 0 BI
Figure 5.
Typical available input current as a function of
V
in
/V
out
I
in
=f(V
in
/V
out
)
45
Iin (A)
DC Boost Application
per PHASE
Figure 6.
Typical available input current as a function of
switching frequency
I
in
=f(f
sw
)
35
Iin (A)
Th=60°C
600V / 41mOhm
per PHASE
40
30
35
Th=60°C
25
30
25
20
Th=100°C
20
Th=100°C
15
10
10
15
5
5
0
0,1
0,2
0,3
0,4
0,5
0,6
0,7
0,8
0,9
1,0
Vin/Vout
0
1
10
100
fsw (kHz)
1000
Conditions:
DC link=
parameter:
350
T
j
= T
jmax
-25°C
V
60
10
f
sw
=
°C to
°C
20
100
steps
kHz
°C
Conditions:
DC link=
parameter:
350
T
j
= T
jmax
-25°C
V
60
10
Vin
°C to
°C
250
100
steps
V
°C
Heatsink temp.
Th from
in
Heatsink temp.
Th from
in
Figure 7.
Typical available input current as a function of
f
sw
and V
in
/V
out
I
in
=f(f
sw
,V
in
/V
out
)
Iin (A)
0,10
per PHASE
Figure 8.
Typical available electric input power as a function
of heatsink temperature
P
in
=f(T
h
)
9
Pin (kW)
per PHASE
0,20
8
"from" kHz
34,0-36,0
32,0-34,0
30,0-32,0
28,0-30,0
26,0-28,0
24,0-26,0
22,0-24,0
20,0-22,0
18,0-20,0
16,0-18,0
14,0-16,0
0,30
7
6
0,40
to" kHz
Vin/Vout
5
0,50
4
0,60
3
0,70
2
0,80
1
8
16
32
64
128
0,90
256
0
60
65
70
75
80
85
90
95
100
Th (
o
C)
fsw (kHz)
Conditions:
Tj= T
jmax
-25°C
DC link=
Th=
350 V
80 °C
Conditions:
Vin
Sw. freq.
Tj= T
jmax
-25°C
250 V
fsw from
16
DC link=
kHz to
350 V
128
kHz
Copyright by Vincotech
2
Revision: 1
10-FZ06BIA041FS01-P898E10
preliminary datasheet
flowSOL 0 BI
Figure 9.
Typical efficiency as a function of
input power
η=f(Pin)
100,00
efficiency (%)
DC Boost Application
per PHASE
600V / 41mOhm
99,75
99,50
"from" kHz
99,25
99,00
98,75
"to" kHz
98,50
98,25
98,00
0
2
4
6
8
10
P
in
(kW)
12
Conditions:
Vin
parameter:
Sw. freq.
Tj= T
jmax
-25°C
250 V
fsw from
16
DC link=
kHz to
350 V
128 kHz
Copyright by Vincotech
3
Revision: 1
10-FZ06BIA041FS01-P898E10
preliminary datasheet
flowSOL 0 BI
H bridge application
General conditions
Buck halfwave conduction
V
GEon
=
10 V
0V
V
GEoff
=
8
Ω
R
gon
=
8
Ω
R
goff
=
cosfi = 1
MOSFET
Figure 2.
600V / 41mOhm
Figure 1.
FWD
Typical avarage static loss
as a function of output current
Ploss=f(Iout)
100
Ploss (W)
Typical avarage static loss
as a function of output current
Ploss=f(Iout)
50
Ploss (W)
90
Voutpk/Vin=1
80
45
Voutpk/Vin=0,2
40
70
35
60
30
50
25
40
20
30
15
20
Voutpk/Vin=0,2
10
10
5
Voutpk/Vin=1
0
0
0
10
20
30
40
50
Iout (A)
60
0
10
20
30
40
50
Iout (A)
60
Conditions:
T
jmax
=
Ratio of output peak to input DC voltage
parameter
V
outpk
/V
in
from
in
Figure 3.
125 °C
0,2
0,2
to
steps
MOSFET
1,0
Conditions:
T
jmax
=
Ratio of output peak to input DC voltage
parameter
V
outpk
/V
in
from
in
Figure 4.
150 °C
0,2
0,2
to
steps
FWD
1,0
Typical avarage switching loss
as a function of output current
Ploss=f(Iout)
Ploss (W)
18
fsw="to"kHz
16
Typical avarage switching loss
as a function of output current
Ploss=f(Iout)
Ploss (W)
3,5
fsw="to" kHz
3,0
14
2,5
12
2,0
10
8
1,5
6
1,0
4
0,5
2
fsw="from" kHz
0
0
10
20
30
40
50
Iout (A)
60
0,0
0
10
20
30
40
50
Iout (A)
60
fsw="from" kHz
Conditions:
Switching freq.
parameter
Tjmax=
DC link=
fsw from
in
125 °C
400 V
4
kHz to
* 2 steps
32 kHz
Conditions:
Switching freq.
parameter
Tjmax=
DC link=
fsw from
in
150 °C
400 V
4
kHz to
* 2 steps
32 kHz
Copyright by Vincotech
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Revision: 1
10-FZ06BIA041FS01-P898E10
preliminary datasheet
Figure 5.
per PHASE
Figure 6.
per PHASE
Typical available output current
as a function of Voutpk/Vin
Fullwave
70
Iout(A)
Th=60°C
60
Typical available output current
as a function of switching frequency
Fullwave
Iout (A)
60
Th=60°C
Iout=f(Voutpk/Vin)
Iout=f(fsw)
50
50
40
40
30
30
Th=100°C
20
20
Th=100°C
10
10
0
0,1
0,2
0,3
0,4
0,5
0,6
0,7
0,8
0,9
1,0
Voutpk/Vout
0
1
10
fsw (kHz)
100
Conditions:
fsw=
Heatsink temp.
parameter
Tj=Tjmax
16 kHz
Th from
in
DC link=
60 °C
10 °C
400 V
to
100 °C
steps
Conditions:
Vout
Heatsink temp.
parameter
Tj=Tjmax
230 V
Th from
in
DC link=
60 °C
10 °C
400 V
to
100 °C
steps
Figure 7.
per PHASE
Figure 8.
per PHASE
Typical available output current
as a function of fsw and Voutpk/Vin
Fullwave
Iout (A)
0,20
Typical available electric output power as a function
of heatsink temperature
Fullwave
Pout (kW)
14
Iout=f(fsw,Voutpk/Vin)
0,10
Pout=f(Th)
13
0,30
12
"from" kHz
0,40
46,0-50,0
42,0-46,0
38,0-42,0
34,0-38,0
30,0-34,0
0,70
0,60
0,50
Voutpk/Vin
50,0-54,0
11
10
"to" kHz
9
8
0,80
7
0,90
6
1,00
2
4
8
16
32
fsw (kHz)
64
60
65
70
75
80
85
90
95
100
Th (
o
C)
Conditions:
Tj=Tjmax
DC link=
Th=
400 V
80 °C
Conditions:
Vout
Switching freq.
parameter
Tj=Tjmax
230 V
fsw from
in
DC link=
400 V
4 kHz
to
32 kHz
* 2 steps
Copyright by Vincotech
5
Revision: 1