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PDF HCPL-315J Data sheet ( Hoja de datos )

Número de pieza HCPL-315J
Descripción 0.5 Amp Output Current IGBT Gate Drive Optocoupler
Fabricantes Agilent 
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No Preview Available ! HCPL-315J Hoja de datos, Descripción, Manual

0.5 Amp Output Current IGBT
Gate Drive Optocoupler
Technical Data
HCPL-3150 (Single Channel)
HCPL-315J (Dual Channel)
Features
• 0.5 A Minimum Peak Output
Current
• 15 kV/µs Minimum Common
Mode Rejection (CMR) at
VCM = 1500 V
• 1.0 V Maximum Low Level
Output Voltage (VOL)
Eliminates Need for
Negative Gate Drive
• ICC = 5 mA Maximum Supply
Current
• Under Voltage Lock-Out
Protection (UVLO) with
Hysteresis
• Wide Operating VCC Range:
15 to 30 Volts
• 0.5 µs Maximum
Propagation Delay
• +/– 0.35 µs Maximum Delay
Between Devices/Channels
• Industrial Temperature
Range:
-40°C to 100°C
• HCPL-315J: Channel One to
Channel Two Output
Isolation = 1500 Vrms/1 min.
• Safety and Regulatory
Approval:
UL Recognized (UL1577)
3750 Vrms/1 min.
IEC/EN/DIN EN 60747-5-2
Approved
VIORM = 630 Vpeak
(HCPL-3150 Option 060 only)
VIORM = 891 Vpeak (HCPL-
315J) CSA Certified
Applications
• Isolated IGBT/MOSFET
Gate Drive
• AC and Brushless DC Motor
Drives
• Industrial Inverters
• Switch Mode Power
Supplies (SMPS)
• Uninterruptable Power
Supplies (UPS)
Functional Diagram
N/C 1
ANODE 2
8 VCC
7 VO
Description
The HCPL-315X consists of a
LED optically coupled to an
integrated circuit with a power
output stage. This optocoupler is
ideally suited for driving power
IGBTs and MOSFETs used in
motor control inverter applica-
tions. The high operating voltage
range of the output stage pro-
vides the drive voltages required
by gate controlled devices. The
voltage and current supplied by
this optocoupler makes it ideally
suited for directly driving IGBTs
with ratings up to 1200 V/50 A.
For IGBTs with higher ratings,
the HCPL-3150/315J can be used
to drive a discrete power stage
which drives the IGBT gate.
N/C 1
ANODE 2
CATHODE 3
SHIELD
16 VCC
15 VO
14 VEE
CATHODE 3
N/C 4
SHIELD
HCPL-3150
TRUTH TABLE
6 VO
5 VEE
ANODE 6
CATHODE 7
N/C 8
SHIELD
HCPL-315J
11 VCC
10 VO
9 VEE
LED
VCC - VEE
“Positive Going”
(i.e., Turn-On)
VCC - VEE
“Negative-Going”
(i.e., Turn-Off)
VO
OFF
ON
ON
ON
0 - 30 V
0 - 11 V
11 - 13.5 V
13.5 - 30 V
0 - 30 V
0 - 9.5 V
9.5 - 12 V
12 - 30 V
LOW
LOW
TRANSITION
HIGH
A 0.1 µF bypass capacitor must be connected between the VCC and VEE pins for each channel.
CAUTION: It is advised that normal static precautions be taken in handling and assembly of this component to
prevent damage and/or degradation which may be induced by ESD.

1 page




HCPL-315J pdf
5
IEC/EN/DIN EN 60747-5-2 Insulation Characteristics
Description
Installation classification per DIN VDE
0110/1.89, Table 1
for rated mains voltage 150 Vrms
for rated mains voltage 300 Vrms
for rated mains voltage 600 Vrms
Climatic Classification
Pollution Degree (DIN VDE 0110/1.89)
Maximum Working Insulation Voltage
Input to Output Test Voltage, Method b*
VIORM x 1.875 = VPR, 100% Production
Test with tm = 1 sec,
Partial discharge < 5 pC
Input to Output Test Voltage, Method a*
VIORM x 1.5 = VPR, Type and Sample
Test, tm = 60 sec,
Partial discharge < 5 pC
Highest Allowable Overvoltage*
(Transient Overvoltage tini = 10 sec)
Safety-Limiting Values – Maximum Values
Allowed in the Event of a Failure, Also
See Figure 37, Thermal Derating Curve.
Case Temperature
Input Current
Output Power
Insulation Resistance at TS, VIO = 500 V
Symbol
VIORM
VPR
VPR
VIOTM
TS
IS, INPUT
PS, OUTPUT
RS
HCPL-3150#060
I-IV
I-III
55/100/21
2
630
1181
945
6000
175
230
600
109
HCPL-315J** Unit
I-IV
I-III
I-II
55/100/21
2
891
Vpeak
1670
Vpeak
1336
6000
Vpeak
Vpeak
175
400
1200
109
°C
mA
mW
**Approval Pending.
*Refer to the front of the optocoupler section of the current Catalog, under Product Safety Regulations section IEC/EN/DIN EN
60747-5-2, for a detailed description of Method a and Method b partial discharge test profiles.
Note: Isolation characteristics are guaranteed only within the safety maximum ratings which must be ensured by protective circuits
in application.

5 Page





HCPL-315J arduino
11
500
IF = 10 mA
TA = 25 °C
Rg = 47
400 Cg = 3 nF
DUTY CYCLE = 50%
f = 10 kHz
300
TPLH
TPHL
500
VCC = 30 V, VEE = 0 V
Rg = 47 , Cg = 3 nF
TA = 25 °C
400 DUTY CYCLE = 50%
f = 10 kHz
300
500
IF(ON) = 10 mA
IF(OFF) = 0 mA
VCC = 30 V, VEE = 0 V
400 Rg = 47 , Cg = 3 nF
DUTY CYCLE = 50%
f = 10 kHz
300
200
100
15
20
25
VCC SUPPLY VOLTAGE V
30
200
TPLH
TPHL
100
6 8 10 12 14 16
IF FORWARD LED CURRENT mA
200
TPLH
TPHL
100
-40 -20 0 20 40 60 80 100
TA TEMPERATURE – °C
Figure 10. Propagation Delay vs. VCC. Figure 11. Propagation Delay vs. IF.
Figure 12. Propagation Delay vs.
Temperature.
500
VCC = 30 V, VEE = 0 V
TA = 25 °C
IF = 10 mA
400 Cg = 3 nF
DUTY CYCLE = 50%
f = 10 kHz
300
200
TPLH
TPHL
100
0
50 100 150 200
Rg SERIES LOAD RESISTANCE
500
VCC = 30 V, VEE = 0 V
TA = 25 °C
IF = 10 mA
400 Rg = 47
DUTY CYCLE = 50%
f = 10 kHz
300
200
TPLH
TPHL
100
0 20 40 60 80 100
Cg LOAD CAPACITANCE nF
30
25
20
15
10
5
0
01 2 3 4 5
IF FORWARD LED CURRENT mA
Figure 13. Propagation Delay vs. Rg.
Figure 14. Propagation Delay vs. Cg.
Figure 15. Transfer Characteristics.
1000
100
10
1.0
IF
+
VF
TA = 25°C
0.1
0.01
0.001
1.10 1.20 1.30 1.40 1.50 1.60
VF FORWARD VOLTAGE V
Figure 16. Input Current vs. Forward
Voltage.

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