MKP1V130RLG ON Semiconductor, MKP1V130RLG Datasheet - Page 4

SIDAC BIDIR 0.9A 130V DO-41

MKP1V130RLG

Manufacturer Part Number
MKP1V130RLG
Description
SIDAC BIDIR 0.9A 130V DO-41
Manufacturer
ON Semiconductor
Datasheets

Specifications of MKP1V130RLG

Current - Peak Output
900mA
Voltage - Breakover
120 ~ 140V
Current - Hold (ih) (max)
100mA
Current - Breakover
35µA
Package / Case
DO-204AL, DO-41, Axial
Breakover Voltage Range
120V To 140V
Breakover Current Max.
35µA
Peak Forward Current
4A
Thyristor Case
DO-41
No. Of Pins
2
Holding Current Max Ih
100mA
On State Rms Current It(rms)
0.9A
Rohs Compliant
Yes
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
MKP1V130RLG
MKP1V130RLGOSTR

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
MKP1V130RLG
Manufacturer:
ON Semiconductor
Quantity:
500
0.07
0.05
0.03
0.02
0.01
1.0
0.7
0.5
0.3
0.2
0.1
1.0
0.9
0.8
−60
0.1
−40
0.2
Figure 6. Typical Breakover Voltage
−20
T
J
, JUNCTION TEMPERATURE (°C)
0.5
0
20
1.0
40
100
1.0
10
2.0
60
I
THERMAL CHARACTERISTICS
PK
80
Z
DT
where:
DT
lead temperature
r(t) = normalized value of transient thermal resistance at
time, t from this figure. For example,
r(t
qJL
p
5.0
tw
) = normalized value of transient resistance at time t
JL
JL
(t) = R
Figure 5. Thermal Response
= P
= the increase in junction temperature above the
Figure 8. Pulse Rating Curve
100
0.1
MKP1V120 Series
pk
10%
qJL
http://onsemi.com
10
R
120
qJL
• r(t)
t
w
[r(t)]
, PULSE WIDTH (ms)
t, TIME (ms)
140
20
4
1.0
1.4
1.2
1.0
0.8
0.6
0.4
50
−60
t
p
−40
100
10
TIME
Figure 7. Typical Holding Current
−20
200
T
J
p
, JUNCTION TEMPERATURE (°C)
.
0
The temperature of the lead should be
measured using a thermocouple placed on the
lead as close as possible to the tie point. The
thermal mass connected to the tie point is
normally large enough so that it will not
significantly respond to heat surges generated
in the diode as a result of pulsed operation
once steady−state conditions are achieved.
Using the measured value of T
temperature may be determined by:
100
20
500
40
1.0 k
T
J
= T
60
L
2.0 k
+ DT
80
JL
L
100
, the junction
5.0 k
120
10 k
140

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