D ts e t
aa h e
R c e t r lc r nc
o h se Ee to is
Ma u a t r dCo o e t
n fc u e
mp n n s
R c e tr b a d d c mp n ns ae
o h se rn e
o oet r
ma ua trd u ig ete dewaes
n fcue sn i r i/ fr
h
p rh s d f m te oiia s p l r
uc a e r
o h r n l u pi s
g
e
o R c e tr waes rce td f m
r o h se
fr e rae r
o
te oiia I. Al rce t n ae
h
r nl P
g
l e rai s r
o
d n wi tea p o a o teOC
o e t h p rv l f h
h
M.
P r aetse u igoiia fcoy
at r e td sn r n la tr
s
g
ts p o rmso R c e tr e eo e
e t rga
r o h se d v lp d
ts s lt n t g aa te p o u t
e t oui s o u rne
o
rd c
me t o e c e teOC d t s e t
es r x e d h
M aa h e.
Qu l yOv riw
ai
t
e ve
• IO- 0 1
S 90
•A 92 cr ct n
S 1 0 et ai
i
o
• Qu l e Ma ua trr Ls (
ai d
n fcues it QML MI- R -
) LP F
385
53
•C a sQ Mitr
ls
lay
i
•C a sVS a eL v l
ls
p c ee
• Qu l e S p l r Ls o D sr uos( L )
ai d u pi s it f it b tr QS D
e
i
•R c e trsacic l u pir oD A a d
o h se i
r ia s p l t L n
t
e
me t aln u t a dD A sa d r s
es lid sr n L tn ad .
y
R c e tr lcrnc , L i c mmi e t
o h se Ee t is L C s o
o
tdo
t
s p ligp o u t ta s t f c so r x e t-
u pyn rd cs h t ai y u tme e p ca
s
t n fr u lya daee u loto eoiial
i s o q ai n r q a t h s r n l
o
t
g
y
s p l db id sr ma ua trr.
u pi
e yn ut
y n fcues
T eoiia ma ua trr d ts e t c o a yn ti d c me t e e t tep r r n e
h r n l n fcue’ aa h e a c mp n ig hs o u n r cs h ef ma c
g
s
o
a ds e ic t n o teR c e tr n fcue v rino ti d vc . o h se Ee t n
n p c ai s f h o h se ma ua trd eso f hs e ie R c e tr lcr -
o
o
isg aa te tep r r n eo i s mio d co p o u t t teoiia OE s e ic -
c u rne s h ef ma c ft e c n u tr rd cs o h r n l M p c a
o
s
g
t n .T pc lv le aefr eee c p r o e o l. eti mii m o ma i m rt g
i s ‘y ia’ au s r o rfrn e up s s ny C r n nmu
o
a
r xmu ai s
n
ma b b s do p o u t h rceiain d sg , i lt n o s mpetsig
y e a e n rd c c aa tr t , e in smuai , r a l e t .
z o
o
n
© 2 1 R cetr l t n s LC Al i t R sre 0 1 2 1
0 3 ohs E cr i , L . lRg s eevd 7 1 0 3
e e oc
h
T l r m r, l s v iw wrcl . m
o e n oe p ae it w . e c o
a
e
s
o ec
SGP10N60A
SGW10N60A
Fast IGBT in NPT-technology
•
75% lower
E
off
compared to previous generation
combined with low conduction losses
•
Short circuit withstand time – 10
µs
•
Designed for:
- Motor controls
- Inverter
PG-TO-247-3
C
G
E
•
NPT-Technology for 600V applications offers:
- very tight parameter distribution
- high ruggedness, temperature stable behaviour
- parallel switching capability
•
Qualified according to JEDEC
1
for target applications
•
Pb-free lead plating; RoHS compliant
•
Complete product spectrum and PSpice Models :
http://www.infineon.com/igbt/
Type
SGP10N60A
SGW10N60A
Maximum Ratings
Parameter
Collector-emitter voltage
DC collector current
T
C
= 25°C
T
C
= 100°C
Pulsed collector current,
t
p
limited by
T
jmax
Turn off safe operating area
V
CE
≤
600V,
T
j
≤
150°C
Gate-emitter voltage
Avalanche energy, single pulse
I
C
= 10 A,
V
CC
= 50 V,
R
GE
= 25
Ω,
start at
T
j
= 25°C
Short circuit withstand time
2
V
GE
= 15V,
V
CC
≤
600V,
T
j
≤
150°C
Power dissipation
T
C
= 25°C
Operating junction and storage temperature
Soldering temperature,
wavesoldering, 1.6mm (0.063 in.) from case for 10s
1
2
PG-TO-220-3-1
V
CE
600V
600V
I
C
10A
10A
V
CE(sat)
2.3V
2.3V
T
j
150°C
150°C
Marking
G10N60A
G10N60A
Package
PG-TO-220-3-1
PG-TO-247-3
Symbol
V
CE
I
C
Value
600
20
10.6
Unit
V
A
I
Cpuls
-
V
GE
E
AS
40
40
±20
70
V
mJ
t
SC
P
tot
T
j
,
T
stg
T
s
10
92
-55...+150
260
µs
W
°C
J-STD-020 and JESD-022
Allowed number of short circuits: <1000; time between short circuits: >1s.
1
Rev. 2.5
Nov 09
SGP10N60A
SGW10N60A
Thermal Resistance
Parameter
Characteristic
IGBT thermal resistance,
junction – case
Thermal resistance,
junction – ambient
R
thJA
PG-TO-220-3-1
PG-TO-247-3-21
62
40
R
thJC
1.35
K/W
Symbol
Conditions
Max. Value
Unit
Electrical Characteristic,
at
T
j
= 25
°C,
unless otherwise specified
Parameter
Static Characteristic
Collector-emitter breakdown voltage
Collector-emitter saturation voltage
V
( B R ) C E S
V
G E
= 0V,
I
C
= 50 0µA
V
CE(sat)
V
G E
= 15V,
I
C
= 10A
T
j
= 25° C
T
j
= 15 0° C
Gate-emitter threshold voltage
Zero gate voltage collector current
V
GE(th)
I
CES
I
C
= 30 0µA,
V
C E
=V
G E
V
C E
= 600V ,V
G E
= 0V
T
j
= 25° C
T
j
= 15 0° C
Gate-emitter leakage current
Transconductance
Dynamic Characteristic
Input capacitance
Output capacitance
Reverse transfer capacitance
Gate charge
Internal emitter inductance
measured 5mm (0.197 in.) from case
Short circuit collector current
2)
Symbol
Conditions
Value
min.
600
1.7
-
3
-
-
-
-
-
-
-
-
-
-
-
Typ.
-
2
2.3
4
-
-
-
6.7
550
62
42
52
7
13
100
max.
-
2.4
2.8
5
Unit
V
µA
40
1500
100
-
660
75
51
68
-
-
-
A
nC
nH
nA
S
pF
I
GES
g
fs
C
iss
C
oss
C
rss
Q
Gate
L
E
I
C(SC)
V
C E
= 0V ,V
G E
= 2 0V
V
C E
= 20V,
I
C
= 10A
V
C E
= 25V,
V
G E
= 0V,
f=
1 M Hz
V
C C
= 4 80V,
I
C
= 10A
V
G E
= 1 5V
PG -TO -220-3-1
PG -TO -247-3-21
V
G E
= 1 5V,t
S C
≤10µs
V
C C
≤
600V,
T
j
≤
150° C
2)
Allowed number of short circuits: <1000; time between short circuits: >1s.
2
Rev. 2.5
Nov 09
SGP10N60A
SGW10N60A
Switching Characteristic, Inductive Load,
at
T
j
=25
°C
Parameter
IGBT Characteristic
Turn-on delay time
Rise time
Turn-off delay time
Fall time
Turn-on energy
Turn-off energy
Total switching energy
t
d(on)
t
r
t
d(off)
t
f
E
on
E
off
E
ts
T
j
= 25° C,
V
C C
= 4 00V,
I
C
= 10A,
V
G E
= 0/ 1 5V ,
R
G
= 2 5Ω ,
L
σ
1 )
= 18 0n H ,
C
σ
1 )
= 55pF
Energy losses include
“tail” and diode
reverse recovery.
-
-
-
-
-
-
-
28
12
178
24
0.15
0.17
0.320
34
15
214
29
0.173
0.221
0.394
mJ
ns
Symbol
Conditions
Value
min.
typ.
max.
Unit
Switching Characteristic, Inductive Load,
at
T
j
=150
°C
Parameter
IGBT Characteristic
Turn-on delay time
Rise time
Turn-off delay time
Fall time
Turn-on energy
Turn-off energy
Total switching energy
t
d(on)
t
r
t
d(off)
t
f
E
on
E
off
E
ts
T
j
= 15 0° C
V
C C
= 4 00V,
I
C
= 10A,
V
G E
= 0/ 1 5V ,
R
G
= 2 5Ω
L
σ
1 )
= 18 0n H ,
1)
C
σ
= 55pF
Energy losses include
“tail” and diode
reverse recovery.
-
-
-
-
-
-
-
28
12
198
26
0.260
0.280
0.540
34
15
238
32
0.299
0.364
0.663
mJ
ns
Symbol
Conditions
Value
min.
typ.
max.
Unit
1)
Leakage inductance
L
σ
and Stray capacity
C
σ
due to dynamic test circuit in Figure E.
3
Rev. 2.5
Nov 09
SGP10N60A
SGW10N60A
50A
T
C
=80°c
I
C
,
COLLECTOR CURRENT
I
C
,
COLLECTOR CURRENT
I
c
t
p
= 5
µ
s
40A
30A
20A
10A
T
C
=110°c
10A
15
µ
s
50
µ
s
1A
200
µ
s
1m s
DC
1V
10V
100V
1000V
I
c
0,1A
0A
10Hz
100Hz
1kHz
10kHz 100kHz
f,
SWITCHING FREQUENCY
Figure 1. Collector current as a function of
switching frequency
(T
j
≤
150°C,
D =
0.5,
V
CE
= 400V,
V
GE
= 0/+15V,
R
G
= 25Ω)
V
CE
,
COLLECTOR
-
EMITTER VOLTAGE
Figure 2. Safe operating area
(D
=
0,
T
C
= 25°C,
T
j
≤
150°C)
12 0W
25A
10 0W
20A
8 0W
I
C
,
COLLECTOR CURRENT
POWER DISSIPATION
15A
6 0W
10A
4 0W
P
tot
,
2 0W
5A
0W
25 °C
50°C
75 °C
1 00°C
125 °C
0A
2 5 °C
5 0 °C
7 5 °C
1 0 0 °C
1 2 5 °C
T
C
,
CASE TEMPERATURE
Figure 3. Power dissipation as a function
of case temperature
(T
j
≤
150°C)
T
C
,
CASE TEMPERATURE
Figure 4. Collector current as a function of
case temperature
(V
GE
≤
15V,
T
j
≤
150°C)
4
Rev. 2.5
Nov 09