®
STPS10L60D/FP
POWER SCHOTTKY RECTIFIER
MAIN PRODUCT CHARACTERISTICS IF(AV) VRRM Tj (max) VF (max) 10 A 60 V 150°C 0.56 V
K A
FEATURES AND BENEFITS
s s s s
LOW FORWARD VOLTAGE DROP NEGLIGIBLE SWITCHING LOSSES LOW THERMAL RESISTANCE AVALANCHE CAPABILITY SPECIFIED
TO-220FPAC STPS10L60FP
DESCRIPTION Schottky rectifier suited for Switched Mode Power Supplies and high frequency DC to DC converters. Packaged in TO-220AC,TO-220FPAC this device is intended for use in DC/DC chargers.
A K
TO-220AC STPS10L60D
ABSOLUTE RATINGS (limiting values) Symbol VRRM IF(RMS) IF(AV) IFSM IRRM PARM Tstg Tj dV/dt *: Parameter Repetitive peak reverse voltage RMS forward current Average forward current TO-220AC Tc = 140°C δ = 0.5 tp = 10 ms Sinusoidal tp = 2 µs square F=1kHz tp = 1µs Tj = 25°C TO-220FPAC Tc = 120°C δ = 0.5 Surge non repetitive forward current Repetitive peak reverse current Repetitive peak avalanche power Storage temperature range Maximum operating junction temperature * Critical rate of rise of reverse voltage 220 1 5800 - 65 to + 175 150 10000 A A W °C °C V/µs Value 60 30 10 Unit V A A
dPtot 1 thermal runaway condition for a diode on its own heatsink < dTj Rth( j − a )
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STPS10L60D/FP
THERMAL RESISTANCES Symbol Rth(j-c) Junction to case Parameter TO-220AC TO-220FPAC STATIC ELECTRICAL CHARACTERISTICS Symbol IR * VF * Parameter Reverse leakage current Forward voltage drop Tests conditions Tj = 25°C Tj = 125°C Tj = 25°C Tj = 125°C Tj = 25°C Tj = 125°C VR = VRRM 65 IF = IF = IF = IF = 10 A 10 A 20 A 20 A 0.48 0.62 Min. Typ. Max. 350 95 0.6 0.56 0.74 0.7 Unit µA mA V Value 1.6 4 Unit °C/W
Pulse test : * tp = 380 µs, δ < 2%
To evaluate the conduction losses use the following equation : P = 0.42 x IF(AV) + 0.014 IF2(RMS) Fig. 1: Average forward power dissipation versus average forward current.
PF(av)(W)
8 7 6 5 4 3 2 1 0 0 1 2 3 4 5
T
δ = 0.1 δ = 0.2
Fig. 2: Average forward current versus ambient temperature(δ = 0.5).
IF(av)(A)
δ = 0.5
12
Rth(j-a)=Rth(j-c) TO-220AC
δ = 0.05 δ=1
10 8 6 4 2
tp
T
Rth(j-a)=15°C/W TO-220FPAC
IF(av) (A)
6 7 8 9
δ=tp/T
δ=tp/T
tp
Tamb(°C) 50 75 100 125 150
10
11
12
0
0
25
Fig. 3: Normalized avalanche power derating versus pulse duration.
PARM(tp) PARM(1µs)
1
Fig. 4: Normalized avalanche power derating versus junction temperature.
PARM(tp) PARM(25°C)
1.2 1
0.1
0.8 0.6
0.01
0.4 0.2
0.001
0.01 0.1 1
tp(µs)
10 100 1000
Tj(°C)
0 0 25 50 75 100 125 150
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STPS10L60D/FP
Fig. 5-1: Non repetitive surge peak forward current versus overload duration (maximum values) (TO-220AC).
IM(A) 200 180 160 140 120 100 80 60 IM 40 20 0 1E-3
Fig. 5-2: Non repetitive surge peak forward current versus overload duration (maximum values) (TO-220FPAC).
IM(A) 120 100 80
Tc=25°C
Tc=25°C
60
Tc=75°C
Tc=75°C
40
IM
Tc=100°C
t
t
Tc=125°C
20 0 1E-3
δ=0.5
t(s)
1E-2 1E-1 1E+0
δ=0.5
t(s) 1E-2 1E-1 1E+0
Fig. 6-1: Relative variation of thermal impedance junction to lead versus pulse duration (TO-220AC).
Zth(j-c)/Rth(j-c) 1.0
0.8 0.6 0.4
δ = 0.2 δ = 0.5
Fig. 6-2: Relative variation of thermal impedance junction to lead versus pulse duration (TO-220FPAC).
Zth(j-c)/Rth(j-c) 1.0 0.8 0.6 0.4
δ = 0.5
T
δ = 0.2 δ = 0.1
T
0.2
δ = 0.1 Single pulse
0.2
tp(s)
1E-3 1E-2
δ=tp/T
tp
tp(s)
Single pulse
0.0 1E-4
δ=tp/T
tp
1E-1
1E+0
0.0 1E-3
1E-2
1E-1
1E+0
1E+1
Fig. 7: Reverse leakage current versus reverse voltage applied (typical values).
Fig. 8: Junction capacitance versus reverse voltage applied (typical values).
5E+2 1E+2 1E+1 1E+0 1E-1 1E-2
IR(mA)
Tc=150°C Tc=125°C
C(nF) 2.0
F=1MHz Tj=25°C
1.0
Tc=100°C Tc=75°C Tc=50°C
0.5
Tc=25°C
0.2
VR(V)
1E-3 0 5 10 15 20 25 30 35 40 45 50 55 60
VR(V)
0.1 1 10 100
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STPS10L60D/FP
Fig. 9: Forward voltage drop versus forward current (low level, maximum values).
IFM(A)
100.0
Tj=150°C (typical values)
Tj=25°C
10.0
Tj=125°C
1.0
VFM(V)
0.1 0.00 0.25 0.50 0.75 1.00 1.25 1.50 1.75 2.00
PACKAGE MECHANICAL DATA TO-220FPAC REF.
A H B
DIMENSIONS Millimeters Inches Min. Max. 0.173 0.181 0.098 0.106 0.098 0.108 0.018 0.027 0.030 0.039 0.045 0.067 0.195 0.205 0.094 0.106 0.393 0.409 0.63 Typ. 1.126 1.205 0.386 0.417 0.114 0.142 0.626 0.646 0.354 0.366 0.118 0.126 Min. Max. 4.4 4.6 2.5 2.7 2.5 2.75 0.45 0.70 0.75 1 1.15 1.70 4.95 5.20 2.4 2.7 10 10.4 16 Typ. 28.6 30.6 9.8 10.6 2.9 3.6 15.9 16.4 9.00 9.30 3.00 3.20
Dia L6 L2 L3 L5 D F1 L4 L7
F G1 G
E
A B D E F F1 G G1 H L2 L3 L4 L5 L6 L7 Dia.
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STPS10L60D/FP
PACKAGE MECHANICAL DATA TO-220AC DIMENSIONS
H2 C L5 ØI L6 L2 D L7 A
REF. A C D E F F1 G H2 L2 L4 L5 L6 L7 L9 M Diam. I
Millimeters Min. Max. 4.40 4.60 1.23 1.32 2.40 2.72 0.49 0.70 0.61 0.88 1.14 1.70 4.95 5.15 10.00 10.40 16.40 typ. 13.00 14.00 2.65 2.95 15.25 15.75 6.20 6.60 3.50 3.93 2.6 typ. 3.75 3.85
Inches Min. Max. 0.173 0.181 0.048 0.051 0.094 0.107 0.019 0.027 0.024 0.034 0.044 0.066 0.194 0.202 0.393 0.409 0.645 typ. 0.511 0.551 0.104 0.116 0.600 0.620 0.244 0.259 0.137 0.154 0.102 typ. 0.147 0.151
L9 F1 L4
F G
M E
s s s
COOLING METHOD : C RECOMMENDED TORQUE VALUE : 0.8M.N MAXIMUM TORQUE VALUE : 1.0M.N
Ordering type STPS10L60D
Marking STPS10L60D
Package TO-220AC TO-220FPAC
Weight 1.86g 1.9g
Base qty 50 50
Delivery mode Tube Tube
STPS10L60FP STPS10L60FP
s
EPOXY MEETS UL94,V0
Information furnished is believed to be accurate and reliable. However, STMicroelectronics assumes no responsibility for the consequences of use of such information nor for any infringement of patents or other rights of third parties which may result from its use. No license is granted by implication or otherwise under any patent or patent rights of STMicroelectronics. Specifications mentioned in this publication are subject to change without notice. This publication supersedes and replaces all information previously supplied. STMicroelectronics products are not authorized for use as critical components in life support devices or systems without express written approval of STMicroelectronics.
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