HCPL-4100#500 Avago Technologies US Inc., HCPL-4100#500 Datasheet - Page 11

OPTOCOUPLER 20MA LOOP 8-SMD

HCPL-4100#500

Manufacturer Part Number
HCPL-4100#500
Description
OPTOCOUPLER 20MA LOOP 8-SMD
Manufacturer
Avago Technologies US Inc.
Type
Transmitterr
Datasheet

Specifications of HCPL-4100#500

Package / Case
8-SMD Gull Wing
Voltage - Isolation
3750Vrms
Input Type
DC
Voltage - Supply
4.5 V ~ 20 V
Operating Temperature
0°C ~ 70°C
Mounting Type
Surface Mount
Logic Gate Type
Inverter
Maximum Baud Rate
20 KBps
Configuration
1 Channel
Isolation Voltage
3750 Vrms
Output Type
Open Collector
Maximum Propagation Delay Time
1.6 us
Maximum Continuous Output Current
30 mA
Maximum Power Dissipation
360 mW
Maximum Operating Temperature
+ 70 C
Minimum Operating Temperature
0 C
Number Of Elements
1
Baud Rate
20Kbps
Output Current
30mA
Package Type
PDIP SMD
Operating Temp Range
0C to 70C
Power Dissipation
360mW
Propagation Delay Time
1600ns
Pin Count
8
Mounting
Surface Mount
Operating Temperature Classification
Commercial
Lead Free Status / RoHS Status
Contains lead / RoHS non-compliant
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Contains lead / RoHS non-compliant

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72
Figure 16. Full Duplex Point to Point Current Loop System Configuration.
As Figure 16 illustrates, the combination of Avago current
loop optocouplers, HCPL-4100 transmitter and HCPL-4200
receiver, can be used at the isolated end of current loops.
Cross talk and common mode coupling are greatly reduced
when optical isolation is imple mented at the same end of
both loops, as shown. Full duplex data rate is limited by the
non-isolated active transmitter current loop. Comments
mentioned under simplex configuration apply to the full
duplex case. Consult the HCPL-4200 receiver opto coupler
data sheet for specified device performance.
Half Duplex
The half duplex configuration, whether point to point or
multi drop, gives non-simultaneous bidirectional data flow
from transmitters to transmitters shown in Figures 17a and
17b. This configuration allows the use of two wires to carry
data back and forth between local and remote units. How-
ever, protocol must be used to determine which specific
transmitter can operate at any given time. Maximum data
rate for a half duplex system is limited by the loop current
charging time. These considera tions were explained in the
Simplex config ura tion section.
11
Figures 17a and 17b illustrate half duplex application for
the combination of HCPL-4100/-4200 optocouplers. The
unique and complementary designs of the HCPL-4100
transmitter and HCPL-4200 receiver optocoup lers provide
many designed-in benefits. For example, total optical isola-
tion at one end of the current loop is easily accom plished,
which results in substantial removal of common mode
influences, elimination of ground potential differences
and reduction of power supply requirements. With this
combina tion of HCPL-4100/-4200 opto couplers, specific
current loop noise immunity is provided, i.e., minimum
SPACE state current noise immunity is 1 mA, MARK state
noise immunity is 8 mA.
Voltage compliance of the current source must be of an
adequate level for operating all units in the loop while
not exceeding 27 V dc, the maximum breakdown voltage
for the HCPL-4100. Note that the HCPL-4100 transmitter
will allow output loop current to conduct when input V
power is off. Consult the HCPL-4200 receiver optocoupler
data sheet for specified device performance.
For more information about the HCPL-4100/-4200 opto-
couplers, consult Application Note 1018.
CC

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