MUR3020WT,
MUR3040WTG,
MUR3060WT
SWITCHMODE
Power Rectifiers
These state−of−the−art devices are designed for use in switching
power supplies, inverters and as free wheeling diodes.
Features
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•
•
•
•
•
•
•
•
•
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Ultrafast 35 and 60 Nanosecond Recovery Time
175°C Operating Junction Temperature
Popular TO−247 Package
High Voltage Capability to 600 V
Low Forward Drop
Low Leakage Specified @ 150°C Case Temperature
Current Derating Specified @ Both Case and Ambient Temperatures
Epoxy Meets UL 94 V−0 @ 0.125 in
High Temperature Glass Passivated Junction
Pb−Free Packages are Available*
ULTRAFAST RECTIFIERS
30 AMPERES, 200−600 VOLTS
1
2, 4
3
MARKING
DIAGRAM
Mechanical Characteristics:
•
Case: Epoxy, Molded
•
Weight: 4.3 Grams (Approximately)
•
Finish: All External Surfaces Corrosion Resistant and Terminal Leads
1
MUR30x0WT
AYWWG
2
3
TO−247
CASE 340L
PLASTIC
are Readily Solderable
•
Lead Temperature for Soldering Purposes: 260°C Max. for 10 Seconds
•
Shipped 30 Units Per Plastic Tube
MUR30x0WT = Device Code
x = 2, 4 or 6
A
= Assembly Location
Y
= Year
WW
= Work Week
G
= Pb−Free Package
ORDERING INFORMATION
Device
MUR3020WT
MUR3020WTG
MUR3040WTG
MUR3060WT
MUR3060WTG
*For additional information on our Pb−Free strategy and soldering details, please
download the ON Semiconductor Soldering and Mounting Techniques
Reference Manual, SOLDERRM/D.
©
Semiconductor Components Industries, LLC, 2013
Package
TO−247
TO−247
(Pb−Free)
TO−247
(Pb−Free)
TO−247
TO−247
(Pb−Free)
Shipping
30 Units/Rail
30 Units/Rail
30 Units/Rail
30 Units/Rail
30 Units/Rail
May, 2013
−
Rev. 6
1
Publication Order Number:
MUR3020WT/D
MUR3020WT, MUR3040WTG, MUR3060WT
MAXIMUM RATINGS
(Per Leg)
Rating
Peak Repetitive Reverse Voltage
Working Peak Reverse Voltage
DC Blocking Voltage
Average Rectified Forward Current @ 145°C
Total Device
Peak Repetitive Surge Current
(Rated V
R
, Square Wave, 20 kHz, T
C
= 145°C)
Nonrepetitive Peak Surge Current (Surge applied at rated load
conditions, halfwave, single phase, 60 Hz)
Operating Junction and Storage Temperature
Symbol
V
RRM
V
RWM
V
R
I
F(AV)
I
FM
I
FSM
T
J
, T
stg
200
MUR3020WT
200
MUR3040WT
400
MUR3060WT
600
Unit
V
15
30
30
150
−
65 to +175
150
A
A
A
°C
Stresses exceeding Maximum Ratings may damage the device. Maximum Ratings are stress ratings only. Functional operation above the
Recommended Operating Conditions is not implied. Extended exposure to stresses above the Recommended Operating Conditions may affect
device reliability.
THERMAL CHARACTERISTICS
(Per Leg)
Rating
Maximum Thermal Resistance,
−
Junction−to−Case
−
Junction−to−Ambient
Symbol
R
qJC
R
qJA
MUR3020WT
MUR3040WT
1.5
40
MUR3060WT
Unit
°C/W
ELECTRICAL CHARACTERISTICS
(Per Leg)
Rating
Maximum Instantaneous Forward Voltage (Note 1)
(I
F
= 15 Amp, T
C
= 150°C)
(I
F
= 15 Amp, T
C
= 25°C)
Maximum Instantaneous Reverse Current (Note 1)
(Rated DC Voltage, T
J
= 150°C)
(Rated DC Voltage, T
J
= 25°C)
Maximum Reverse Recovery Time (i
F
= 1.0 A, di/dt = 50 Amps/ms)
Typical Peak Reverse Recovery Current
(I
F
= 1.0 A, di/dt = 50 A/ms)
1. Pulse Test: Pulse Width = 300
ms,
Duty Cycle
≤
2.0%.
Symbol
V
F
MUR3020WT
0.85
1.05
500
10
35
0.7
MUR3040WT
1.12
1.25
500
10
60
MUR3060WT
1.4
1.7
1000
10
60
Unit
V
i
R
mA
t
rr
I
RM
ns
A
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2
MUR3020WT, MUR3040WTG, MUR3060WT
MUR3020WT
100
T
J
= 150°C
100
100°C
25°C
IR , REVERSE CURRENT (
μ
A)
50
20
10
5
2
1
0.5
0.2
0.1
0.05
0.02
0.01
T
J
= 150°C
100°C
50
30
20
i F , INSTANTANEOUS FORWARD CURRENT (AMPS)
25°C
10
5
3
2
60
80 100 120 140 160 180 200
V
R
, REVERSE VOLTAGE (VOLTS)
*The curves shown are typical for the highest voltage device in the voltage grouping.
Typical reverse current for lower voltage selections can be estimated from these same
curves if V
R
is sufficiently below rated V
R
.
0
20
40
Figure 2. Typical Reverse Current (Per Leg)*
I F(AV) , AVERAGE FORWARD CURRENT (AMPS)
16
14
12
10
SQUARE WAVE
8
6
4
RATED VOLTAGE APPLIED
2
0
140
150
160
170
T
C
, CASE TEMPERATURE (5C)
180
dc
1
0.5
0.3
0.2
0.1
0.2
0.4
0.6
0.8
1
1.2
v
F
, INSTANTANEOUS VOLTAGE (VOLTS)
1.4
1.6
Figure 1. Typical Forward Voltage (Per Leg)
Figure 3. Current Derating, Case (Per Leg)
I F(AV) , AVERAGE FORWARD CURRENT (AMPS)
P F(AV) , AVERAGE POWER DISSIPATION (WATTS)
14
dc
12
10
8
6
4
SQUARE WAVE
dc
R
qJA
= 15°C/W AS OBTAINED
USING A SMALL FINNED
HEAT SINK.
16
14
12
10
8
6
SQUARE WAVE
4
T
J
= 125°C
2
0
0
2
4
6
8
10
12
14
I
F(AV)
, AVERAGE FORWARD CURRENT (AMPS)
16
20
I
(RESISTIVE LOAD)
PK
=
π
I
AV
I
(CAPACITIVE LOAD)
PK
= 5
I
AV
10
dc
SQUARE WAVE
2 R
qJA
= 40°C/W
AS OBTAINED IN FREE AIR
WITH NO HEAT SINK.
0
0
20
40
60
80
100 120 140
160
T
A
, AMBIENT TEMPERATURE (5C)
180
200
Figure 4. Current Derating, Ambient (Per Leg)
Figure 5. Power Dissipation (Per Leg)
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3
MUR3020WT, MUR3040WTG, MUR3060WT
MUR3040WTG
100
IR , REVERSE CURRENT (
μ
A)
100
50
20
10
5
2
1
0.5
0.2
0.1
0.05
0.02
0.01
T
J
= 150°C
100°C
25°C
50
100°C
30
20
i F , INSTANTANEOUS FORWARD CURRENT (AMPS)
T
J
= 150°C
25°C
10
5
3
2
0
50
100
150
200
250
300
350
400
450
5
V
R
, REVERSE VOLTAGE (VOLTS)
*The curves shown are typical for the highest voltage device in the voltage groupin
Typical reverse current for lower voltage selections can be estimated from these sam
curves if V
R
is sufficiently below rated V
R
.
Figure 7. Typical Reverse Current (Per Leg)*
1
I F(AV) , AVERAGE FORWARD CURRENT (AMPS)
16
14
12
10
SQUARE WAVE
8
6
4
RATED VOLTAGE APPLIED
2
0
140
150
160
170
T
C
, CASE TEMPERATURE (°C)
1
dc
0.5
0.3
0.2
0.1
0.2
0.4
0.6
0.8
1
1.2
v
F
, INSTANTANEOUS VOLTAGE (VOLTS)
1.4
1.6
Figure 6. Typical Forward Voltage (Per Leg)
Figure 8. Current Derating, Case (Per Leg)
I F(AV) , AVERAGE FORWARD CURRENT (AMPS)
P F(AV) , AVERAGE POWER DISSIPATION (WATTS)
14
dc
12
10
8
6
4
SQUARE WAVE
dc
R
θJA
= 15°C/W AS OBTAINED
USING A SMALL FINNED
HEAT SINK.
16
14
12
10
I
(RESISTIVE-INDUCTIVE LOAD)
PK
=
π
I
AV
I
(CAPACITIVE LOAD)
PK
= 5
I
AV
10
20
SQUARE WAVE
dc
8
6
4
2
0
0
2
4
6
8
10
SQUARE WAVE
2 R
θJA
= 40°C/W
AS OBTAINED IN FREE AIR
WITH NO HEAT SINK.
0
0
160
20
40
60
80
100 120 140
T
A
, AMBIENT TEMPERATURE (°C)
T
J
= 125°C
180
200
12
14
I
F(AV)
, AVERAGE FORWARD CURRENT (AMPS)
Figure 9. Current Derating, Ambient (Per Leg)
Figure 10. Power Dissipation (Per Leg)
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4
MUR3020WT, MUR3040WTG, MUR3060WT
MUR3060WT
100
200
100
50
IR , REVERSE CURRENT (
μ
A)
20
10
5
2
1
0.5
0.2
0.1
0.05
5
3
2
I F(AV) , AVERAGE FORWARD CURRENT (AMPS)
16
14
12
SQUARE WAVE
10
8
6
4
RATED VOLTAGE APPLIED
2
0
140
150
160
170
T
C
, CASE TEMPERATURE (5C)
180
dc
0.02
150
200
250
300
350
400
450
500
550
600 650
T
J
= 150°C
50
T
J
= 150°C
30
100°C
20
i F , INSTANTANEOUS FORWARD CURRENT (AMPS)
25°C
10
100°C
25°C
V
R
, REVERSE VOLTAGE (VOLTS)
*The curves shown are typical for the highest voltage device in the voltage grouping.
Typical reverse current for lower voltage selections can be estimated from these same
curves if V
R
is sufficiently below rated V
R
.
Figure 12. Typical Reverse Current (Per Leg)*
1
0.5
0.3
0.2
0.1
0.2
0.4
0.6
0.8
1
1.2
v
F
, INSTANTANEOUS VOLTAGE (VOLTS)
1.4
1.6
Figure 11. Typical Forward Voltage (Per Leg)
Figure 13. Current Derating, Case (Per Leg)
I F(AV) , AVERAGE FORWARD CURRENT (AMPS)
P F(AV) , AVERAGE POWER DISSIPATION (WATTS)
10
9
8
7
6
5
4
3
SQUARE WAVE
R
qJA
= 60°C/W
AS OBTAINED IN FREE AIR
1
WITH NO HEAT SINK.
0
0
20
40
60
80
100 120 140
T
A
, AMBIENT TEMPERATURE (5C)
2
dc
SQUARE WAVE
dc
R
qJA
= 16°C/W AS OBTAINED
FROM A SMALL TO-220
HEAT SINK.
16
14
12
10
8
6
4
2
0
0
I
(CAPACITIVE LOAD)
PK
= 5
I
AV
10
dc
20
SQUARE WAVE
(RESISTIVE-INDUCTIVE LOAD)
I
PK
=
π
I
AV
T
J
= 125°C
160
180
200
2
4
6
8
10
12
14
I
F(AV)
, AVERAGE FORWARD CURRENT (AMPS)
16
Figure 14. Current Derating, Ambient (Per Leg)
Figure 15. Power Dissipation (Per Leg)
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