IL410 Vishay, IL410 Datasheet - Page 5

OPTOCOUPLER, TRIAC, 5300VRMS

IL410

Manufacturer Part Number
IL410
Description
OPTOCOUPLER, TRIAC, 5300VRMS
Manufacturer
Vishay
Datasheets

Specifications of IL410

No. Of Channels
1
Optocoupler Output Type
Phototriac
Input Current
10mA
Output Voltage
600V
Opto Case Style
DIP
No. Of Pins
6
Forward Voltage
1.35V
Isolation Voltage
5.3kV
Voltage - Isolation
5300Vrms
Number Of Channels
1
Voltage - Off State
600V
Output Type
AC, Triac, Zero Cross
Current - Gate Trigger (igt) (max)
6mA
Current - Hold (ih)
500µA
Current - Dc Forward (if)
60mA
Current - Output / Channel
300mA
Mounting Type
Through Hole
Package / Case
6-DIP (0.300", 7.62mm)
Configuration
1
Maximum Continuous Output Current
300 mA
Maximum Input Current
60 mA
Maximum Operating Temperature
+ 100 C
Maximum Power Dissipation
500 mW
Maximum Reverse Diode Voltage
6 V
Maximum Turn-on Time
35 us (Typ)
Minimum Operating Temperature
- 55 C
Mounting Style
Through Hole
Typical Input Voltage
1.16 V
Zero-crossing Circuit
Yes
Zero-crossing Voltage
25 V
Output Device
Triac
Peak Output Voltage (vdrm)
600 V
Maximum Input Voltage
1.35 V
Maximum Output Voltage
420 VAC
Minimum Trigger Current
6 mA (Max)
Approval Bodies
UL Recognised
Rohs Compliant
Yes
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant
Other names
751-1297-5
IL410GI
IL410GI

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The hold-off condition also can be eliminated by pro-
viding a higher level of LED drive current. The higher
LED drive provides a larger photocurrent which
causes the phototransistor to turn-on before the com-
mutating spike has activated the zero cross network.
Figure 2 shows the relationship of the LED drive for
Typical Characteristics (Tamb = 25 °C unless otherwise specified)
Document Number 83627
Rev. 1.4, 26-Apr-04
iil410_03
iil410_02
Figure 2. Normalized LED Trigger Current vs. Power Factor
1.4
1.3
1.2
1.1
1.0
0.9
0.8
0.7
0.8
2.0
1.8
1.6
1.4
1.2
1.0
.1
0.0
Figure 3. Forward Voltage vs. Forward Current
0.2
IF - Forward Current - mA
IFth Normalized to IFth @ PF = 1.0
0.4
1
PF - Power Factor
Ta = -55°C
Ta = 25°C
Ta = 85°C
0.6
Ta = 25°C
10
0.8
1.0
100
1.2
power factors of less than 1.0. The curve shows that
if a device requires 1.5 mA for a resistive load, then
1.8 times (2.7 mA) that amount would be required to
control an inductive load whose power factor is less
than 0.3.
iil410_04
iil410_05
10000
1000
100
150
100
50
10
0
10 -6
Figure 4. Peak LED Current vs. Duty Factor, Tau
-60
Figure 5. Maximum LED Power Dissipation
Duty Factor
.005
.01
.02
.05
.1
.5
.2
-40
10 -5
Ta - Ambient Temperature - °C
-20
10 -4
t -LED Pulse Duration -s
0
10 -3
Vishay Semiconductors
IL410/ IL4108
20
10 -2
40
τ
10 -1
60
t
DF = /t
10 0
80
τ
www.vishay.com
10 1
100
5

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