7
PR29MF1xNSZ Series/PR39MF1xNSZ Series/PR49MF11NSZ Series
0
10
20
30
40
50
60
70
Forward current I
F
(mA)
Ambient temperature T
a
(˚C)
25 0 50 100
Fig.1 Forward Current vs. Ambient
Temperature
Fig.2 RMS ON-state Current vs.
Ambient Temperature
Sheet No.: D4-A00601EN
0
0.2
0.4
0.8
0.6
1
30 0 50 100
RMS ON-state current I
T
(rms) (A)
Ambient temperature T
a
(˚C)
PR29MF1xNSZ/
PR39MF1xNSZ
PR49MF11NSZ
50
5
1
100
10
0.5011.5 2 2.5 3
25˚C
50˚C
25˚C
0˚C
Forward current I
F
(mA)
Forward voltage V
F
(V)
T
a
=75˚C
Fig.3-a Forward Current vs.
Forward Voltage (Rank 1)
Fig.4-a Minimum Trigger Current vs.
Ambient Temperature (Rank 1)
Fig.3-b Forward Current vs.
Forward Voltage (Rank 2)
Fig.4-b Minimum Trigger Current vs.
Ambient Temperature (Rank 2)
0
2
4
6
8
12
10
40 20 0 20 40 60 80 100
Minimum trigger current I
FT
(mA)
Ambient temperature T
a
(˚C)
V
D
=6V
R
L
=100
PR29MF11NSZ
PR49MF11NSZ
PR39MF11NSZ
50
5
1
100
10
Forward current I
F
(mA)
Forward voltage V
F
(V)
25˚C
25˚C
0˚C
T
a
=75˚C
50˚C
10.9 1.1 1.2 1.3 1.4 1.5
0
1
2
3
4
6
5
Minimum trigger current I
FT
(mA)
Ambient temperature T
a
(˚C)
V
D
=6V
R
L
=100
30 0 10050
8
PR29MF1xNSZ Series/PR39MF1xNSZ Series/PR49MF11NSZ Series
Fig.8-a Turn-on Time vs. Forward Current
(Rank 1)
Fig.8-b Turn-on Time vs. Forward Current
(Rank 2)
Sheet No.: D4-A00601EN
Fig.7 ON-state Current vs. ON-state Voltage
1 000
10
100
1
100
V
D
=6V
R
L
=100
T
a
=25˚C
10 20 30 40 50
Forward current I
F
(mA)
Turn-on time t
ON
(µs)
PR49MF11NSZ
PR39MF11NSZ
PR29MF11NSZ
0
0.3
0.6
0.9
1.2
1.5
1.8
0 0.5 1 1.5
ON-state current I
T
(A)
ON-state voltage V
T
(V)
I
F
=20mA
T
a
=25˚C
PR29MF1xNSZ/
PR39MF1xNSZ
PR49MF11NSZ
1 000
100
10
1
100
V
D
=6V
R
L
=100
T
a
=25˚C
1
10
Forward current I
F
(mA)
Turn-on time t
ON
(µs)
Remarks : Please be aware that all data in the graph
are just for reference.
Fig.5 ON-state Voltage vs.
Ambient Temperature
Fig.6 Relative Holding Current vs.
Ambient Temperature
0.8
1
0.9
1.2
1.1
1.3
1.4
30 0 20 40 60 80 100
ON-state voltage V
T
(V)
Ambient temperature T
a
(˚C)
I
T
=0.9A
PR29MF1xNSZ/
PR39MF1xNSZ
PR49MF11NSZ
10
100
1000
30 0 20 406080100
Relative holding current I
H
(t˚C) / I
H
(25˚C)×100%
Ambient temperature T
a
(˚C)
V
D
=6V
9
PR29MF1xNSZ Series/PR39MF1xNSZ Series/PR49MF11NSZ Series
Design Considerations
In order for the SSR to turn off, the triggering current (I
F
) must be 0.1mA or less.
In phase control applications or where the SSR is being by a pulse signal, please ensure that the pulse width
is a minimum of 1ms.
When the input current (I
F
) is below 0.1mA, the output Triac will be in the open circuit mode. However, if the
voltage across the Triac, V
D
, increases faster than rated dV/dt, the Triac may turn on. To avoid this situation,
please incorporate a snubber circuit. Due to the many different types of load that can be driven, we can
merely recommend some circuit values to start with : Cs=0.022µF and Rs=47. The operation of the SSR
and snubber circuit should be tested and if unintentional switching occurs, please adjust the snubber circuit
component values accordingly.
When making the transition from On to Off state, a snubber circuit should be used ensure that sudden drops
in current are not accompanied by large instantaneous changes in voltage across the Triac.
This fast change in voltage is brought about by the phase difference between current and voltage.
Primarily, this is experienced in driving loads which are inductive such as motors and solenods.
Following the procedure outlined above should provide sufficient results.
Any snubber or Varistor used for the above mentioned scenarios should be located as close to the main
output triac as possible.
All pins shall be used by soldering on the board. (Socket and others shall not be used.)
Degradation
In general, the emission of the IRED used in SSR will degrade over time.
In the case where long term operation and / or constant extreme temperature fluctuations will be applied to
the devices, please allow for a worst case scenario of 50% degradation over 5years.
Therefore in order to maintain proper operation, a design implementing these SSRs should provide at least
twice the minimum required triggering current from initial operation.
Design guide
Sheet No.: D4-A00601EN
Recommended Operating Conditions
Parameter
PR29MF1xNSZ
PR39MF1xNSZ
PR49MF11NSZ
Symbol Unit
Input
Output
Input signal current
at ON state
Input signal current at OFF state
Load supply
voltage
Load supply current
Frequency
Operating temperature
I
F
(ON)
I
F
(OFF)
V
OUT
(rms)
IOUT(rms)
f
T
opr
mA
mA
V
mA
Hz
˚C
Locate snubber circuit between output terminals
(Cs=0.022µF, Rs=47)
Conditions
20
10
0
100
50
20
25
15
0.1
120
240
300
I
T(rms)×80%()
60
80
MIN. MAX.
(
) See Fig.2 about derating curve (I
T
(rms) vs. ambient temperature).
PR29MF1xNSZ
PR39MF1xNSZ
PR49MF11NSZ
Rank 1
Rank 2

PR39MF11NSZ

Mfr. #:
Manufacturer:
Sharp Microelectronics
Description:
SSR RELAY SPST-NO 900MA 0-240V
Lifecycle:
New from this manufacturer.
Delivery:
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