Features: • 650V/800V Avalanche Rugged CoolMOS™• Only few external Components required• Input Undervoltage Lockout• 100kHz Switching Frequency• Max Duty Cycle 72%• Low Power Standby Mode to meet European Commission Requirements• Thermal Shut Down wit...
ICE2A280: Features: • 650V/800V Avalanche Rugged CoolMOS™• Only few external Components required• Input Undervoltage Lockout• 100kHz Switching Frequency• Max Duty Cycle 72%...
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Parameter |
Symbol |
Limit Values |
Unit |
Remarks | ||
min. |
max. | |||||
Drain Source Voltage ICE2A165/265/365 |
VDS |
- |
650 |
V |
Tj=110°C | |
Drain Source Voltage ICE2A180/280 |
VDS |
800 | ||||
Avalanche energy, repetitive tAR limited by max. Tj=150°C1) |
ICE2A165 |
EAR1 |
- |
0.2 |
mJ |
|
CE2A265Z |
EAR2 |
- |
0.4 |
mJ |
||
ICE2A365 |
EAR3 |
- |
0.5 |
mJ |
||
ICE2A180 |
EAR4 |
- |
0.2 |
mJ |
||
ICE2A280Z |
EAR5 |
- |
0.4 |
mJ |
||
Avalanche current, repetitive tAR limited by max. Tj=150°C1) |
ICE2A165 |
IAR1 |
- |
1 |
A |
|
ICE2A265 |
IAR2 |
- |
2 |
A |
||
ICE2A365 |
IAR3 |
- |
3 |
A |
||
ICE2A180 |
IAR4 |
- |
1 |
A |
||
ICE2A280 |
IAR5 |
- |
2 |
A |
||
VCC Supply Voltage |
VCC |
-0.3 |
22 |
V |
||
FB Voltage |
VFB |
-0.3 |
6.5 |
V |
||
SoftS Voltage |
VSoftS |
-0.3 |
6.5 |
V |
||
ISense |
ISense |
-0.3 |
3 |
V |
||
Junction Temperature |
Tj |
-40 |
150 |
°C |
Controller & CoolMOS™ | |
Storage Temperature |
TS |
-50 |
150 |
°C |
||
Thermal Resistance Junction-Ambient |
RthJA |
- |
90 |
K/W |
P-DIP-8-6 | |
ESD Capability2) |
VESD |
- |
2 |
kV |
Human Body Model |
The second generation COOLSET™-F2 of the ICE2A280 provides several special enhancements to satisfy the needs for low power standby and protection features. In standby mode frequency reduction is used to lower the power consumption and support a stable output voltage in this mode. The frequency reduction is limited to 21.5 kHz to avoid audible noise. In case of failure modes like open loop, overvoltage or overload due to short circuit the ICE2A280 switches in Auto Restart Mode which is controlled by the internal protection unit. By means of the internal precise peak current limitation the dimension of the transformer and the secondary diode can be lower which leads to more cost efficiency