Bulletin PD-20882 11/04
30EPH03PbF
Ultrafast Rectifier
Features
•
•
•
•
•
Ultrafast Recovery Time
Low Forward Voltage Drop
Low Leakage Current
175°C Operating Junction Temperature
Lead-Free ("PbF" suffix)
t
rr
= 55ns
I
F(AV)
= 30Amp
V
R
= 300V
Description/ Applications
International Rectifier's 300V series are the state of the art Ultrafast recovery rectifiers designed with optimized
performance of forward voltage drop and Ultrafast recovery time.
The planar structure and the platinum doped life time control guarantee the best overall performance, ruggedness
and reliability characteristics.
These devices are intended for use in the output rectification stage of SMPS, UPS, DC-DC converters as well as
freewheeling diodes in low voltage inverters and chopper motor drives.
Their extremely optimized stored charge and low recovery current minimize the switching losses and reduce over
dissipation in the switching element and snubbers.
Absolute Maximum Ratings
Parameters
V
RRM
I
F(AV)
I
FSM
T
J
, T
STG
Repetitive Peak Reverse Voltage
Average Rectified Forward Current
Non Repetitive Peak Surge Current
@ T
C
= 143°C
@ T
J
= 25°C
Max
300
30
300
- 65 to 175
Units
V
A
Operating Junction and Storage Temperatures
°C
Case Styles
30EPH03PbF
BASE
COMMON
CATHODE
2
1
CATHODE
3
ANODE
TO247
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1
30EPH03PbF
Bulletin PD-20882 11/04
Electrical Characteristics @ T
J
= 25°C (unless otherwise specified)
Parameters
V
BR
, V
r
V
F
Breakdown Voltage,
Blocking Voltage
Forward Voltage
Min Typ Max Units Test Conditions
300
-
-
-
-
V
V
V
µA
µA
pF
nH
I
R
= 100µA
I
F
= 30A, T
J
= 25°C
I
F
= 30A, T
J
= 125°C
V
R
= V
R
Rated
T
J
= 125°C, V
R
= V
R
Rated
V
R
= 300V
Measured lead to lead 5mm from package body
1.08 1.25
0.9
0.05
280
90
3.5
1.00
60
600
-
-
I
R
Reverse Leakage Current
-
-
C
T
L
S
Junction Capacitance
Series Inductance
-
-
Dynamic Recovery Characteristics @ T
J
= 25°C (unless otherwise specified)
Parameters
t
rr
Reverse Recovery Time
Min Typ Max Units Test Conditions
-
-
-
38
52
55
-
-
-
-
-
-
nC
A
ns
I
F
= 1.0A, di
F
/dt = 50A/µs, V
R
= 30V
T
J
= 25°C
T
J
= 125°C
T
J
= 25°C
T
J
= 125°C
T
J
= 25°C
T
J
= 125°C
I
F
= 30A
di
F
/dt = -200A/µs
V
R
= 200V
I
RRM
Peak Recovery Current
-
-
2.8
7.3
53
190
Q
rr
Reverse Recovery Charge
-
-
Thermal - Mechanical Characteristics
Parameters
T
J
T
Stg
R
thJC
R
thJA
!
R
thCS
"
Wt
Max. Junction Temperature Range
Max. Storage Temperature Range
Thermal Resistance, Junction to Case
Thermal Resistance, Junction to Ambient
Thermal Resistance, Case to Heatsink
Weight
Per Leg
Per Leg
Min
- 65
- 65
-
-
-
-
-
Typ
-
-
0.5
-
0.4
6.0
0.22
-
-
30EPH03
Max
175
175
0.9
40
-
-
-
12
10
Units
°C
°C/W
g
(oz)
Kg-cm
lbf.in
Mounting Torque
6.0
5.0
Marking Device
!
Typical Socket Mount
"
Mounting Surface, Flat, Smooth and Greased
2
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30EPH03PbF
Bulletin PD-20882 11/04
1000
Reverse Current - I
R
(µA)
1000
Tj = 175˚C
100
10
1
0.1
0.01
150˚C
125˚C
100˚C
Instantaneous Forward Current - I
F
(A)
25˚C
100
0.001
0
50
100
150
200
250
300
Reverse Voltage - V
R
(V)
Fig. 2 - Typical Values Of Reverse Current
Vs. Reverse Voltage
1000
Junction Capacitance - C
T
(pF)
10
T
J
= 25˚C
Tj = 175˚C
Tj = 125˚C
Tj = 25˚C
100
1
0.2
10
0.4
0.6
0.8
1
1.2
1.4
1.6
1.8
0
50
100
150
200
250
300
Forward Voltage Drop - V
FM
(V)
Fig. 1 - Typical Forward Voltage Drop Characteristics
Reverse Voltage - V
R
(V)
Fig. 3 - Typical Junction Capacitance
Vs. Reverse Voltage
1
D = 0.50
D = 0.20
D = 0.10
D = 0.05
D = 0.02
D = 0.01
(°C/W)
thJC
0.1
Thermal Impedance Z
P
DM
t1
0.01
Single Pulse
(Thermal Resistance)
t2
Notes:
1. Duty factor D = t1/ t2
.
.
2. Peak Tj = Pdm x ZthJC + Tc
0.001
0.00001
0.0001
0.001
0.01
0.1
1
t
1
, Rectangular Pulse Duration (Seconds)
Fig. 4 - Max. Thermal Impedance Z
thJC
Characteristics
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30EPH03PbF
Bulletin PD-20882 11/04
180
Allowable Case Temperature (°C)
50
Average Power Loss ( Watts )
RMS Limit
170
160
150
140
130
120
0
5
10 15 20 25 30 35 40 45
Average Forward Current - I
F(AV)
(A)
Fig. 5 - Max. Allowable Case Temperature
Vs. Average Forward Current
Square wave (D = 0.50)
Rated Vr applied
40
30
20
10
0
0
10
20
30
40
50
Average Forward Current - I
F(AV)
(A)
Fig. 6 - Forward Power Loss Characteristics
DC
see note (3)
DC
D = 0.01
D = 0.02
D = 0.05
D = 0.10
D = 0.20
D = 0.50
100
If = 30A, Tj = 25˚C
If = 30A, Tj = 125˚C
1000
If = 30A, Tj = 125˚C
Qrr ( nC )
trr ( ns )
100
If = 30A, Tj = 25˚C
10
100
di
F
/dt (A/µs )
1000
10
100
di
F
/dt (A/µs )
1000
Fig. 7 - Typical Reverse Recovery vs. di
F
/dt
Fig. 8 - Typical Stored Charge vs. di
F
/dt
(3) Formula used: T
C
= T
J
- (Pd + Pd
REV
) x R
thJC
;
Pd = Forward Power Loss = I
F(AV)
x V
FM
@ (I
F(AV)
/
D) (see Fig. 6);
Pd
REV
= Inverse Power Loss = V
R1
x I
R
(1 - D); I
R
@ V
R1
= rated V
R
4
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30EPH03PbF
Bulletin PD-20882 11/04
Reverse Recovery Circuit
V
R
= 200V
0.01
Ω
L = 70µH
D.U.T.
di
F
/dt
dif/dt
D
G
IRFP250
S
ADJUST
Fig. 9 - Reverse Recovery Parameter Test Circuit
3
I
F
0
t
rr
t
a
t
b
4
Q
rr
2
I
RRM
0.5 I
RRM
di(rec)M/dt
0.75 I
RRM
5
1
di
f
F
/dt
/dt
1. di
F
/dt - Rate of change of current through zero
crossing
2. I
RRM
- Peak reverse recovery current
3. t
rr
- Reverse recovery time measured from zero
crossing point of negative going I
F
to point where
a line passing through 0.75 I
RRM
and 0.50 I
RRM
extrapolated to zero current
4. Q
rr
- Area under curve defined by t
rr
and I
RRM
t
rr
x I
RRM
Q
rr
=
2
5. di
(rec) M
/ dt - Peak rate of change of
current during t
b
portion of t
rr
Fig. 10 - Reverse Recovery Waveform and Definitions
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