16
Figure 10. Test circuit for common mode transient immunity and typical waveforms
Figure 11. Recommended printed circuit board layout
Figure 9. Test circuit for t
EHL
and t
ELH
OUTPUT V
O
MONITORING
NODE
1.5 V
t
EHL
t
ELH
V
E
INPUT
V
O
OUTPUT
3.0 V
1.5 V
3.3 V or 5 V
7
5
6
8
2
3
4
1
I
R
L
V
CC
0.1 µF
BYPASS
*C
L
*C
L
IS APPROXIMATELY 15 pF WHICH INCLUDES
PROBE AND STRAY WIRING CAPACITANCE.
GND
7.5 mA
INPUT V
E
MONITORING NODE
3.3 V or 5 V
7
5
6
8
2
3
4
1
V
CC
0.1 µF
BYPASS
GND
OUTPUT V
O
MONITORING
NODE
PULSE
GENERATOR
Z
O
= 50
+
I
F
B
A
V
V
CM
R
L
SINGLE CHANNEL
3.3 V or 5 V
7
5
6
8
2
3
4
1
V
CC
0.1 µF
BYPASS
GND
OUTPUT V
O
MONITORING
NODE
PULSE
GENERATOR
Z
O
= 50
+
I
F
B
A
V
FF
V
CM
R
L
DUAL CHANNEL
V
O
0.5 V
V
O
(MIN.)
5 V
0 V
SWITCH AT A: I
F
= 0 mA
SWITCH AT B: I
F
= 7.5 mA
V
CM
C
MH
C
ML
V
O
(MAX.)
V
CM
(PEAK)
V
O
GND BUS (BACK)
V
CC
BUS (FRONT)
ENABLE
0.1µF
10 mm MAX.
(SEE NOTE 5)
OUTPUT
NC
NC
SINGLE CHANNEL
DEVICE ILLUSTRATED.
PULSE GEN.
Z
O
= 50
t
f
= t
r
= 5 ns
F
FF
17
Figure 12. Recommended LVTTL interface circuit
*DIODE D1 (1N916 OR EQUIVALENT) IS NOT REQUIRED FOR UNITS WITH OPEN COLLECTOR OUTPUT.
V
CC1
3.3 V or 5V
GND 1
D1*
I
F
V
F
SHIELD
SINGLE CHANNEL DEVICE
8
6
5
R
L
0.1 µF
BYPASS
2
3
+
3.3 V or 5V
GND 2
V
CC2
2
220
1
7
V
E
V
CC1
3.3 V or 5V
GND 1
D1*
SHIELD
DUAL CHANNEL DEVICE
CHANNEL 1 SHOWN
8
7
5
R
L
0.1 µF
BYPASS
1
2
+
3.3 V or 5 V
GND 2
V
CC2
2
220
1
I
F
V
F
18
Figure 13. Recommended drive circuit for High-CMR
Figure 14. AC equivalent circuit
Also, common-mode transients can capacitively cou-
ple from the LED anode (or cathode) to the output-side
ground causing current to be shunted away from the
LED (which can be bad if the LED is on) or conversely
cause current to be injected into the LED (bad if the LED
is meant to be o). Figure 14 shows the parasitic capaci-
tances which exists between LED anode/cathode and
output ground (C
LA
and C
LC
). Also shown in Figure 14 on
the input side is an AC-equivalent circuit.
For transients occurring when the LED is on, common-
mode rejec tion (CMR
L
, since the output is in the “low
state) depends upon the amount of LED current drive
(I
F
). For conditions where I
F
is close to the switching
threshold (I
TH
), CMR
L
also depends on the extent which
I
LP
and I
LN
balance each other. In other words, any condi-
tion where common-mode transients cause a momen-
tary decrease in I
F
will cause common-mode failure for
transients which are fast enough.
Application Information
Common-Mode Rejection for HCPL-260L Families:
Figure 13 shows the recom mended drive circuit for op-
timal common-mode rejection performance. Two main
points to note are:
1. The enable pin is tied to V
CC
rather than oating (this
applies to single-channel parts only).
2. Two LED-current setting resistors are used instead of
one. This is to balance I
LED
variation during common-
mode transients.
If the enable pin is left oating, it is possible for common-
mode transients to couple to the enable pin, resulting in
common-mode failure. This failure mechanism only oc-
curs when the LED is on and the output is in the Low
State. It is identied as occurring when the transient out-
put voltage rises above 0.8 V. Therefore, the enable pin
should be connected to either V
CC
or logic-level high for
best common-mode performance with the output low
(CMR
L
). This failure mechanism is only present in single-
channel parts which have the enable function.
0.01 µF
350
74LS04
OR ANY TOTEM-POLE
OUTPUT LOGIC GATE
V
O
V
CC+
8
7
6
1
3
SHIELD
5
2
4
HCPL-260L
GND
GND2
220
V
CC
220
*
*
* HIGHER CMR MAY BE OBTAINABLE BY CONNECTING PINS 1, 4 TO INPUT GROUND (GND1).
GND1
350
1/2 R
LED
V
CC+
15 pF
+
V
CM
8
7
6
1
3
SHIELD
5
2
4
C
LA
V
O
GND
0.01 µF
1/2 R
LED
C
LC
I
LN
I
LP

HCPL-063L-000E

Mfr. #:
Manufacturer:
Broadcom / Avago
Description:
High Speed Optocouplers 15MBd 2Ch 5mA
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
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