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PDF HCPL-5300 Data sheet ( Hoja de datos )

Número de pieza HCPL-5300
Descripción Intelligent Power Module and Gate Drive Interface Optocouplers
Fabricantes Agilent(Hewlett-Packard) 
Logotipo Agilent(Hewlett-Packard) Logotipo



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No Preview Available ! HCPL-5300 Hoja de datos, Descripción, Manual

H
Intelligent Power Module
and Gate Drive Interface
Optocouplers
Technical Data
HCPL-5300
HCPL-5301
5962-96852
Features
• Performance Specified Over
Full Military Temperature
Range: -55°C to 125°C
• Fast Maximum Propagation
Delays
tPHL = 450 ns,
tPLH = 650 ns
• Minimized Pulse Width
Distortion (PWD = 450 ns)
• High Common Mode
Rejection (CMR): 10 kV/µs at
VCM = 1000 V
• CTR > 30% at IF = 10 mA
• 1500 Vdc Withstand Test
Voltage
• Manufactured and Tested on
a MIL-PRF-38534 Certified
Line
• Hermetically Sealed
Packages
• Dual Marked with Device
Part Number and DESC
Drawing Number
• QML-38534, Class H and K
• HCPL-4506 Function
Compatibility
Applications
• Military and Space
• High Reliability Systems
• Harsh Industrial
Environments
• Transportation, Medical, and
Life Critical Systems
• IPM Isolation
• Isolated IGBT/MOSFET Gate
Drive
• AC and Brushless DC Motor
Drives
• Industrial Inverters
Description
The HCPL-5300/5301 devices
consist of a GaAsP LED optically
coupled to an integrated high
gain photo detector in a
hermetically sealed package. The
Schematic Diagram
18
20 k
27
36
4
SHIELD
5
products are capable of operation
and storage over the full military
temperature range and can be
purchased as either standard
product or with full MIL-PRF-
38534 Class Level H or K testing
or from the DESC Drawing 5962-
96852. All devices are
manufactured and tested on a
MIL-PRF-38534 certified line and
are included in the DESC
Qualified Manufacturers List
QML-38534 for Hybrid Micro-
circuits. Minimized propagation
delay difference between devices
make these optocouplers excellent
solutions for improving inverter
efficiency through reduced
switching dead time. An on chip
20 koutput pull-up resistor can
be enabled by shorting output
pins 6 and 7, thus eliminating the
need for an external pull-up
resistor in common IPM applica-
tions. Specifications and
performance plots are given for
typical IPM applications.
Truth Table
LED
ON
OFF
VO
L
H
The connection of a 0.1 µF bypass capacitor between pins 5 and 8 is recommended.
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.
1-498
5964-9648E

1 page




HCPL-5300 pdf
Electrical Specifications
Over recommended operating conditions (TA = -55°C to +125°C, VCC = +4.5 V to 30 V,
IF(ON) = 10 mA to 20 mA, VF(OFF) = -5 V to 0.8 V) unless otherwise specified.
Parameter
Group A
Sub-
Symbol groups[12] Min. Typ.* Max. Units
Test Conditions Fig. Note
Current Transfer
Ratio
CTR 1, 2, 3 30 90
% IF = 10 mA, VO = 0.6 V
1
Low Level Output IOL 1, 2, 3 3.0 9.0
Current
mA IF = 10 mA, VO = 0.6 V 1, 2
Low Level Output VOL 1, 2, 3
Voltage
0.3 0.6 V IO = 2.4 mA
Input Threshold
Current
High Level
Output Current
ITH 1, 2, 3
IOH 1, 2, 3
1.5 5.0 mA VO = 0.8 V,
IO = 0.75 mA
5 75 µA VF = 0.8 V
17
3
High Level Supply
Current
ICCH
1, 2, 3
0.6 1.5 mA VF = 0.8 V, VO = Open
7
Low Level Supply ICCL 1, 2, 3
Current
0.6 1.5 mA IF = 10 mA, VO = Open
7
Input Forward
Voltage
VF 1, 2, 3 1.0 1.5 1.8 V IF = 10 mA
4
Temperature
Coefficient of
Forward Voltage
VF/
TA
-1.6 mV/°C IF = 10 mA
Input Reverse
BVR
Breakdown Voltage
1, 2, 3
5
V IR = 100 µA
Input Capacitance
Input-Output
Insulation Leakage
Current
Resistance
(Input-Output)
CIN
II-O
RI-O
1
90
1.0
1012
pF f = 1 MHz, VF = 0 V
µA RH = 45%, t = 5 sec,
VI-O = 1500 Vdc,
TA = 25°C
VI-O = 500 Vdc
2
2
Capacitance
(Input-Output)
CI-O
2.4 pF f = 1 MHz
2
Internal Pull-up
Resistor
RL
1 14 20 28 kTA = 25°C
4, 5,
6
Internal Pull-up
Resistor
Temperature
Coefficient
RL/
TA
0.014
k/°C
*All typical values at 25°C, VCC = 15 V.
1-502

5 Page





HCPL-5300 arduino
1
IF
2
BA
3
+
VFF
4
20 k
SHIELD
+
VCM = 1000 V
8
0.1 µF
7
6
5
20 k
+
VCC = 15 V
VCM
VOUT
100 pF*
OV
t
*100 pF TOTAL
CAPACITANCE
VO
SWITCH AT A: IF = 0 mA
VO
SWITCH AT B: IF = 10 mA
Figure 6. CMR Test Circuit. Typical CMR Waveform.
δV = VCM
δt t
VCC
VOL
600
IF = 10 mA
VCC = 15 V
500 CL = 100 pF
RL = 20 k(EXTERNAL)
400
tPLH
300 tPHL
200
100
-60 -40 -20 0 20 40 60 80 100 120 140
TA – TEMPERATURE – °C
600
IF = 10 mA
VCC = 15 V
500 CL = 100 pF
RL = 20 k(INTERNAL)
400
300
200
tPLH
tPHL
100
-60 -40 -20 0 20 40 60 80 100 120 140
TA – TEMPERATURE – °C
800
IF = 10 mA
600
VCC = 15 V
CL = 100 pF
TA = 25 °C
400
200
tPLH
tPHL
0 10 20 30 40 50
RL – LOAD RESISTANCE – K
Figure 7. Propagation Delay with
External 20 kRL vs. Temperature.
Figure 8. Propagation Delay with
Internal 20 kRL vs. Temperature.
Figure 9. Propagation Delay vs. Load
Resistance.
1400
1200
1000
800
IF = 10 mA
VCC = 15 V
RL = 20 k
TA = 25°C
tPLH
tPHL
600
400
200
0
0 100 200 300 400 500
CL – LOAD CAPACITANCE – pF
1400
1200
1000
800
IF = 10 mA
CL = 100 pF
RL = 20 k
TA = 25°C
tPLH
tPHL
600
400
200
0
5 10 15 20 25
VCC – SUPPLY VOLTAGE – V
30
Figure 10. Propagation Delay vs. Load
Capacitance.
1-508
Figure 11. Propagation Delay vs.
Supply Voltage.

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