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PDF PM150CLA060 Data sheet ( Hoja de datos )

Número de pieza PM150CLA060
Descripción FLAT-BASE TYPE INSULATED PACKAGE
Fabricantes Mitsubishi Electric 
Logotipo Mitsubishi Electric Logotipo



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PM150CLA060
MITSUBISHI <INTELLIGENT POWER MODULES>
PM150CLA060
FLAT-BASE TYPE
INSULATED PACKAGE
FEATURE
a) Adopting new 5th generation IGBT (CSTBT) chip, which
performance is improved by 1µm fine rule process.
For example, typical Vce(sat)=1.5V @Tj=125°C
b) I adopt the over-temperature conservation by Tj detection of
CSTBT chip, and error output is possible from all each con-
servation upper and lower arm of IPM.
c) New small package
Reduce the package size by 10%, thickness by 22% from
S-DASH series.
• 3φ 150A, 600V Current-sense IGBT type inverter
• Monolithic gate drive & protection logic
• Detection, protection & status indication circuits for, short-
circuit, over-temperature & under-voltage (P-Fo available
from upper arm devices)
• Acoustic noise-less 15kW/18.5kW class inverter application
APPLICATION
General purpose inverter, servo drives and other motor controls
PACKAGE OUTLINES
11
7
19.75
19.75 3.25 16
3-2
120
106
16 16
3-2 3-2
15.25
6-2
2-φ5.5
MOUNTING HOLES
Dimensions in mm
16
3
1 5 9 13 19
6-M5 NUTS
B
10.75
32.75
U VW
23 23
19-s0.5
12
23
22
+
1
0.5
Terminal code
1. VUPC
2. UFO
3. UP
4. VUP1
5. VVPC
6. VFO
7. VP
8. VVP1
9. VWPC
10. WFO
11. WP
12. VWP1
13. VNC
14. VN1
15. NC
16. UN
17. VN
18. WN
19. Fo
Apr. 2004

1 page




PM150CLA060 pdf
MITSUBISHI <INTELLIGENT POWER MODULES>
PM150CLA060
FLAT-BASE TYPE
INSULATED PACKAGE
PRECAUTIONS FOR TESTING
1. Before appling any control supply voltage (VD), the input terminals should be pulled up by resistores, etc. to their corre-
sponding supply voltage and each input signal should be kept off state.
After this, the specified ON and OFF level setting for each input signal should be done.
2. When performing SCtests, the turn-off surge voltage spike at the corresponding protection operation should not be al-
lowed to rise above VCES rating of the device.
(These test should not be done by using a curve tracer or its equivalent.)
P, (U,V,W)
P, (U,V,W)
VCIN
(0V)
IN
Fo
V Ic
VCIN
(15V)
IN
Fo
V Ic
VD (all) U,V,W, (N)
Fig. 1 VCE(sat) Test
VD (all) U,V,W, (N)
Fig. 2 VEC Test
a) Lower Arm Switching
VCIN
(15V)
Signal input
(Upper Arm)
Fo
Signal input Fo
VCIN (Lower Arm)
P
U,V,W
CS
Vcc
trr
Irr
90%
Ic
VCE
90%
b) Upper Arm Switching VD (all)
Fo
VCIN
Signal input
(Upper Arm)
VCIN
(15V)
Signal input
(Lower Arm)
Fo
N
Ic
P
10%
10%
tc(on)
10%
tc(off)
VCIN
U,V,W
CS Vcc td(on)
tr
td(off)
10%
tf
(ton= td(on) + tr)
(toff= td(off) + tf)
N
VD (all)
Ic
Fig. 3 Switching time and SC test circuit
Fig. 4 Switching time test waveform
VCIN
(15V)
P, (U,V,W)
A
IN
Fo Pulse VCE
U,V,W, (N)
VD (all)
Fig. 5 ICES Test
VCIN
Ic
Short Circuit Current
Constant Current
SC
Fo
toff(SC)
Fig. 6 SC test waveform
IPMinput signal VCIN
(Upper Arm)
0V
IPMinput signal VCIN
(Lower Arm)
0V
1.5V
2V
tdead
2V
1.5V
tdead
1.5V
2V
tdead
t
t
1.5V: Input on threshold voltage Vth(on) typical value, 2V: Input off threshold voltage Vth(off) typical value
Fig. 7 Dead time measurement point example
Apr. 2004

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