1N5341BRLG ON Semiconductor, 1N5341BRLG Datasheet - Page 6

DIODE ZENER 6.2V 5W AXIAL

1N5341BRLG

Manufacturer Part Number
1N5341BRLG
Description
DIODE ZENER 6.2V 5W AXIAL
Manufacturer
ON Semiconductor
Series
Surmetic™r
Type
Voltage Regulatorr
Datasheet

Specifications of 1N5341BRLG

Voltage - Zener (nom) (vz)
6.2V
Voltage - Forward (vf) (max) @ If
1.2V @ 1A
Current - Reverse Leakage @ Vr
1µA @ 3V
Tolerance
±5%
Power - Max
5W
Impedance (max) (zzt)
1 Ohm
Mounting Type
Through Hole
Package / Case
Axial
Operating Temperature
-65°C ~ 200°C
Zener Voltage
6.2 V
Voltage Tolerance
5 %
Zener Current
765 mA
Power Dissipation
5 W
Maximum Reverse Leakage Current
1 uA
Maximum Zener Impedance
1 Ohms
Maximum Operating Temperature
+ 200 C
Mounting Style
SMD/SMT
Minimum Operating Temperature
- 65 C
Voltage Regulation Accuracy
100 mV
Configuration
Single
Package Type
Case 017AA-01
Zener Voltage (typ)
6.2V
Zener Test Current
200mA
Knee Impedance
1Ohm
Operating Temperature Classification
Military
Rev Curr
1uA
Mounting
Through Hole
Pin Count
2
Operating Temp Range
-65C to 200C
Zener Voltage Vz Typ
6.2V
Power Dissipation Pd
5W
Operating Temperature Range
-65°C To +200°C
Diode Case Style
017AA
No. Of Pins
2
Filter Terminals
Axial Leaded
Rohs Compliant
Yes
Diode Type
Zener
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
1N5341BRLGOSTR

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
1N5341BRLG
Manufacturer:
ON
Quantity:
32 000
Part Number:
1N5341BRLG
Manufacturer:
ON
Quantity:
30 000
Part Number:
1N5341BRLG
Manufacturer:
ON/安森美
Quantity:
20 000
Company:
Part Number:
1N5341BRLG(6.2V)
Quantity:
12 000
Company:
Part Number:
1N5341BRLG(6.2V)
Quantity:
12 000
diode is temperature dependent, it is necessary to determine
junction temperature under any set of operating conditions
in order to calculate its value. The following procedure is
recommended:
q
power dissipation.
DT
temperature and may be found from Figure 4 for a train of
power pulses or from Figure 1 for dc power.
LA
Since the actual voltage available from a given Zener
Lead Temperature, T
Junction Temperature, T
JL
is the lead‐to‐ambient thermal resistance and P
is the increase in junction temperature above the lead
T
T
L
DT
L
J
= q
, should be determined from:
= T
JL
J
LA
, may be found from:
= q
L
P
+ DT
JL
D
+ T
100
P
0.1
10
JL
D
1
80
A
Figure 9. Zener Voltage versus Zener Current
100
APPLICATION NOTE
120
D
1N5333B Series
http://onsemi.com
V
is the
Z
V
= 82 thru 200 Volts
Z
, ZENER VOLTAGE (VOLTS)
140
6
of P
Changes in voltage, V
q
from Figures 2 and 3.
vary with time and may also be affected significantly by the
zener resistance. For best regulation, keep current
excursions as low as possible.
capability. Surge limitations are given in Figure 5. They are
lower than would be expected by considering only junction
temperature, as current crowding effects cause temperatures
to be extremely high in small spots resulting in device
degradation should the limits of Figure 5 be exceeded.
160
VZ
For worst‐case design, using expected limits of I
Under high power‐pulse operation, the Zener voltage will
Data of Figure 4 should not be used to compute surge
, the Zener voltage temperature coefficient, is found
D
and the extremes of T
180
200
Z
DV = q
, can then be found from:
220
VZ
J
DT
(DT
J
J
) may be estimated.
Z
, limits

Related parts for 1N5341BRLG