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1SMC51AT3G

型号:

1SMC51AT3G

品牌:

LITTELFUSE[ LITTELFUSE ]

页数:

7 页

PDF大小:

642 K

1SMC5.0AT3G Series,  
SZ1SMC5.0AT3G Series  
1500 Watt Peak Power  
Zener Transient Voltage  
Suppressors  
.com  
Unidirectional*  
PLASTIC SURFACE MOUNT  
ZENER TRANSIENT  
VOLTAGE SUPPRESSORS  
5.078 VOLTS  
1500 WATT PEAK POWER  
The SMC series is designed to protect voltage  
sensitive components from high voltage, high energy transients.  
They have excellent clamping capability, high surge capability,  
low zener impedance and fast response time. The SMC series is  
supplied in  
Littelfuse exclusive, cost-effective, highly  
reliable package and is ideally suited for use in  
communication systems, automotive, numerical controls, process  
controls, medical equipment, business machines, power supplies and  
many other industrial/consumer applications.  
SMC  
CASE 403  
PLASTIC  
Features  
Working Peak Reverse Voltage Range 5.0 V to 78 V  
Standard Zener Breakdown Voltage Range 6.7 V to 91.25 V  
Peak Power 1500 W @ 1 ms  
ESD Rating of Class 3 (> 16 KV) per Human Body Model  
Maximum Clamp Voltage @ Peak Pulse Current  
Low Leakage < 5 A Above 10 V  
MARKING DIAGRAM  
UL 497B for Isolated Loop Circuit Protection  
Maximum Temperature Coefficient Specified  
Response Time is Typically < 1 ns  
SZ Prefix for Automotive and Other Applications Requiring Unique  
Site and Control Change Requirements; AECQ101 Qualified and  
PPAP Capable  
PbFree Packages are Available  
Mechanical Characteristics:  
CASE: Void-free, transfer-molded, thermosetting plastic  
FINISH: All external surfaces are corrosion resistant and leads are  
readily solderable  
ORDERING INFORMATION  
Device  
Package  
Shipping  
MAXIMUM CASE TEMPERATURE FOR SOLDERING PURPOSES:  
260ºC for 10 Seconds  
LEADS: Modified LBend providing more contact area to bond pads  
POLARITY: Cathode indicated by molded polarity bend  
MOUNTING POSITION: Any  
DEVICE MARKING INFORMATION  
Specifications subject to change without notice. © 2016 Littelfuse, Inc.  
1
September 19, 2016 Rev. 8  
1SMC5.0AT3/D  
1SMC5.0AT3G Series, SZ1SMC5.0AT3G Series  
MAXIMUM RATINGS  
Rating  
Peak Power Dissipation (Note 1) @ T = 25C, Pulse Width = 1 ms  
Symbol  
Value  
1500  
4.0  
Unit  
W
P
PK  
L
DC Power Dissipation @ T = 75C  
P
D
W
L
Measured Zero Lead Length (Note 2)  
Derate Above 75C  
Thermal Resistance from Junction−to−Lead  
54.6  
18.3  
mW/C  
C/W  
R
q
JL  
DC Power Dissipation (Note 3) @ T = 25C  
Derate Above 25C  
Thermal Resistance from Junction−to−Ambient  
P
0.75  
6.1  
165  
W
mW/C  
C/W  
A
D
R
q
JA  
Forward Surge Current (Note 4) @ T = 25C  
I
200  
A
A
FSM  
Operating and Storage Temperature Range  
T , T  
−65 to +150  
C  
J
stg  
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.  
1. 10 x 1000 ms, non−repetitive.  
2. 1 in square copper pad, FR−4 board.  
3. FR−4 board, using Littelfuse minimum recommended footprint, as shown in 403 case outline dimensions spec.  
4. 1/2 sine wave (or equivalent square wave), PW = 8.3 ms, duty cycle = 4 pulses per minute maximum.  
ELECTRICAL CHARACTERISTICS (T = 25C unless  
I
A
otherwise noted, V = 3.5 V Max @ I = 100 A) (Note 5)  
F
F
I
F
Symbol  
Parameter  
I
Maximum Reverse Peak Pulse Current  
Clamping Voltage @ I  
PP  
V
C
PP  
V
C
V
V
V
Working Peak Reverse Voltage  
BR RWM  
RWM  
V
I
V
F
R
T
I
R
Maximum Reverse Leakage Current @ V  
I
RWM  
V
Breakdown Voltage @ I  
Test Current  
BR  
T
I
T
I
F
Forward Current  
I
PP  
V
F
Forward Voltage @ I  
F
UniDirectional TVS  
5. 1/2 sine wave or equivalent, PW = 8.3 ms non−repetitive duty  
cycle  
Specifications subject to change without notice. © 2016 Littelfuse, Inc.  
Publication Order Number:  
2
September 19, 2016 − Rev. 8  
1SMC5.0AT3/D  
 
1SMC5.0AT3G Series, SZ1SMC5.0AT3G Series  
ELECTRICAL CHARACTERISTICS (T = 25C unless otherwise noted)  
A
Breakdown Voltage  
V
V
@ I (Note 8)  
C
PP  
V
RWM  
V
V (Note 7)  
@ I  
I
PP  
(Note 6)  
I
R
@ V  
RWM  
BR  
T
C
Device  
Marking  
Min  
Nom  
Max  
mA  
V
mA  
V
A
Device*  
1SMC5.0AT3G  
1SMC6.0AT3G  
1SMC6.5AT3G  
GDE  
GDG  
GDK  
5.0  
6.0  
6.5  
1000  
1000  
500  
6.4  
6.7  
7.02  
7.6  
7.0  
10  
10  
10  
9.2  
10.3  
11.2  
163  
6.67  
7.22  
7.37  
7.98  
145.6  
133.9  
1SMC7.5AT3G  
1SMC8.0AT3G  
1SMC9.0AT3G  
GDP  
GDR  
GDV  
7.5  
8.0  
9.0  
100  
50  
8.33  
8.89  
10  
8.77  
9.36  
9.21  
9.83  
11.1  
1
1
1
12.9  
13.6  
15.4  
116.3  
110.3  
97.4  
10  
10.55  
1SMC10AT3G  
1SMC12AT3G  
1SMC13AT3G  
GDX  
GEE  
GEG  
10  
12  
13  
5
5
5
11.1  
13.3  
14.4  
11.7  
14  
12.3  
14.7  
15.9  
1
1
1
17  
88.2  
75.3  
69.7  
19.9  
21.5  
15.15  
1SMC14AT3G  
1SMC15AT3G  
1SMC16AT3G  
1SMC17AT3G  
GEK  
GEM  
GEP  
GER  
14  
15  
16  
17  
5
5
5
5
15.6  
16.7  
17.8  
18.9  
16.4  
17.6  
17.2  
18.5  
19.7  
20.9  
1
1
1
1
23.2  
24.4  
26  
64.7  
61.5  
57.7  
53.3  
18.75  
19.9  
27.6  
1SMC18AT3G  
1SMC20AT3G  
1SMC22AT3G  
1SMC24AT3G  
GET  
GEV  
GEX  
GEZ  
18  
20  
22  
24  
5
5
5
5
20  
21.05  
23.35  
25.65  
28.1  
22.1  
24.5  
26.9  
29.5  
1
1
1
1
29.2  
32.4  
35.5  
38.9  
51.4  
46.3  
42.2  
38.6  
22.2  
24.4  
26.7  
1SMC26AT3G  
1SMC28AT3G  
1SMC30AT3G  
1SMC33AT3G  
GFE  
GFG  
GFK  
GFM  
26  
28  
30  
33  
5
5
5
5
28.9  
31.1  
33.3  
36.7  
30.4  
32.75  
35.05  
38.65  
31.9  
34.4  
36.8  
40.6  
1
1
1
1
42.1  
45.4  
48.4  
53.3  
35.6  
33  
31  
28.1  
1SMC36AT3G  
1SMC40AT3G  
1SMC43AT3G  
GFP  
GFR  
GFT  
36  
40  
43  
5
5
5
40  
42.1  
46.75  
50.3  
44.2  
49.1  
52.8  
1
1
1
58.1  
64.5  
69.4  
25.8  
32.2  
21.6  
44.4  
47.8  
1SMC48AT3G  
1SMC51AT3G  
1SMC54AT3G  
1SMC58AT3G  
GFX  
GFZ  
GGE  
GGG  
48  
51  
54  
58  
5
5
5
5
53.3  
56.7  
60  
56.1  
59.7  
58.9  
62.7  
66.3  
71.2  
1
1
1
1
77.4  
82.4  
87.1  
93.6  
19.4  
18.2  
17.2  
16  
63.15  
67.8  
64.4  
1SMC60AT3G  
1SMC64AT3G  
1SMC70AT3G  
1SMC75AT3G  
1SMC78AT3G  
GGK  
GGM  
GGP  
GGR  
GGT  
60  
64  
70  
75  
78  
5
5
5
5
5
66.7  
71.1  
77.8  
83.3  
86.7  
70.2  
74.85  
81.9  
73.7  
78.6  
86  
1
1
1
1
1
96.8  
103  
113  
121  
126  
15.5  
14.6  
13.3  
12.4  
11.4  
87.7  
92.1  
95.8  
91.25  
6. A transient suppressor is normally selected according to the maximum working peak reverse voltage (V  
greater than the DC or continuous peak operating voltage level.  
), which should be equal to or  
RWM  
7. V measured at pulse test current I at an ambient temperature of 25C.  
BR  
T
8. Surge current waveform per Figure 2 and derate per Figure 3 of the General Data − 1500 Watt at the beginning of this group.  
*Include SZ-prefix devices where applicable.  
Specifications subject to change without notice. © 2016 Littelfuse, Inc.  
Publication Order Number:  
3
September 19, 2016 − Rev. 8  
1SMC5.0AT3/D  
 
1SMC5.0AT3G Series, SZ1SMC5.0AT3G Series  
100  
PULSE WIDTH (t ) IS DEFINED  
P
AS THAT POINT WHERE THE PEAK  
NONREPETITIVE  
t 10 ms  
rꢀ  
PULSE WAVEFORM  
SHOWN IN FIGURE 2  
CURRENT DECAYS TO 50%  
OF I .  
PP  
100  
50  
0
PEAK VALUE - I  
PP  
10  
I
PP  
2
HALF VALUE -  
t
P
1
0.1 ms 1 ms  
10 ms  
100 ms  
t , PULSE WIDTH  
1 ms  
10 ms  
0
1
2
3
4
t, TIME (ms)  
P
Figure 1. Pulse Rating Curve  
Figure 2. Pulse Waveform  
160  
1000  
500  
V
BR  
ꢀ(NOM)ꢀ=ꢀ6.8ꢀTOꢀ13ꢀV  
20ꢀV  
140  
120  
T ꢀ=ꢀ25C  
P
L
t ꢀ=ꢀ10ꢀms  
43ꢀV  
24ꢀV  
200  
100  
50  
75ꢀV  
120ꢀV  
100  
80  
180ꢀV  
20  
10  
60  
40  
20  
0
5
2
1
0.3  
0.5 0.7  
1
2
3
5
7
10  
20 30  
0
25  
50  
75  
100  
125  
150  
T , AMBIENT TEMPERATURE (C)  
A
DV , INSTANTANEOUS INCREASE IN V ABOVE V (NOM) (VOLTS)  
BR  
BR  
BR  
Figure 4. Dynamic Impedance  
Figure 3. Pulse Derating Curve  
UL RECOGNITION  
The entire series has Underwriters Laboratory  
Recognition for the classification of protectors (QVGQ2)  
under the UL standard for safety 497B and File#E128662.  
Many competitors only have one or two devices recognized  
or have recognition in a non-protective category. Some  
competitors have no recognition at all. With the UL497B  
recognition, our parts successfully passed several tests  
including Strike Voltage Breakdown test, Endurance  
Conditioning, Temperature test, Dielectric Voltage-Withstand  
test, Discharge test and several more.  
Whereas, some competitors have only passed a  
flammability test for the package material, we have been  
recognized for much more to be included in their Protector  
category.  
Specifications subject to change without notice. © 2016 Littelfuse, Inc.  
Publication Order Number:  
4
September 19, 2016 − Rev. 8  
1SMC5.0AT3/D  
 
1SMC5.0AT3G Series, SZ1SMC5.0AT3G Series  
APPLICATION NOTES  
Response Time  
minimum lead lengths and placing the suppressor device as  
close as possible to the equipment or components to be  
protected will minimize this overshoot.  
In most applications, the transient suppressor device is  
placed in parallel with the equipment or component to be  
protected. In this situation, there is a time delay associated  
with the capacitance of the device and an overshoot  
condition associated with the inductance of the device and  
the inductance of the connection method. The capacitive  
effect is of minor importance in the parallel protection  
scheme because it only produces a time delay in the  
transition from the operating voltage to the clamp voltage as  
shown in Figure 5.  
The inductive effects in the device are due to actual  
turn-on time (time required for the device to go from zero  
current to full current) and lead inductance. This inductive  
effect produces an overshoot in the voltage across the  
equipment or component being protected as shown in  
Figure 6. Minimizing this overshoot is very important in the  
application, since the main purpose for adding a transient  
suppressor is to clamp voltage spikes. The SMC series have  
a very good response time, typically < 1 ns and negligible  
inductance. However, external inductive effects could  
produce unacceptable overshoot. Proper circuit layout,  
Some input impedance represented by Z is essential to  
in  
prevent overstress of the protection device. This impedance  
should be as high as possible, without restricting the circuit  
operation.  
Duty Cycle Derating  
The data of Figure 1 applies for non-repetitive conditions  
and at a lead temperature of 25C. If the duty cycle increases,  
the peak power must be reduced as indicated by the curves  
of Figure 7. Average power must be derated as the lead or  
ambient temperature rises above 25C. The average power  
derating curve normally given on data sheets may be  
normalized and used for this purpose.  
At first glance the derating curves of Figure 7 appear to be  
in error as the 10 ms pulse has a higher derating factor than  
the 10 ms pulse. However, when the derating factor for a  
given pulse of Figure 7 is multiplied by the peak power value  
of Figure 1 for the same pulse, the results follow the  
expected trend.  
Specifications subject to change without notice. © 2016 Littelfuse, Inc.  
Publication Order Number:  
6
September 19, 2016 − Rev. 8  
1SMC5.0AT3/D  
1SMC5.0AT3G Series, SZ1SMC5.0AT3G Series  
TYPICAL PROTECTION CIRCUIT  
Z
in  
LOAD  
V
in  
V
L
V
in  
(TRANSIENT)  
OVERSHOOT DUE TO  
INDUCTIVE EFFECTS  
V
V
V
in  
(TRANSIENT)  
V
L
V
L
V
in  
t
d
t
D
= TIME DELAY DUE TO CAPACITIVE EFFECT  
t
t
Figure 5.  
Figure 6.  
1
0.7  
0.5  
0.3  
0.2  
PULSE WIDTH  
10 ms  
0.1  
0.07  
0.05  
1 ms  
0.03  
0.02  
100 ms  
10 ms  
0.01  
0.1 0.2  
0.5  
1
2
5
10 20  
50 100  
D, DUTY CYCLE (%)  
Figure 7. Typical Derating Factor for Duty Cycle  
Specifications subject to change without notice. © 2016 Littelfuse, Inc.  
Publication Order Number:  
6
September 19, 2016 − Rev. 8  
1SMC5.0AT3/D  
1SMC5.0AT3G Series, SZ1SMC5.0AT3G Series  
PACKAGE DIMENSIONS  
SMC  
NOTES:  
H
E
1. DIMENSIONING AND TOLERANCING PER ANSI Y14.5M, 1982.  
2. CONTROLLING DIMENSION: INCH.  
3. D DIMENSION SHALL BE MEASURED WITHIN DIMENSION P.  
4. 403-01 THRU -02 OBSOLETE, NEW STANDARD 403-03.  
E
MILLIMETERS  
NOM MAX  
INCHES  
NOM  
DIM  
A
MIN  
MIN  
MAX  
b
D
A1  
b
c
D
E
H
E
L
L1  
A
c
A1  
L
L1  
SOLDERING FOOTPRINT  
mm  
inches  
Information furnished is believed to be accurate and reliable. However, users should independently evaluate the suitability of and test each product  
selected for their own applications. Littelfuse products are not designed for, and shall not be used for, any purpose (including, without limitation,  
military, aerospace, medical, life-saving, life-sustaining or nuclear facility applications, devices intended for surgical implant into the body, or any  
other application in which the failure or lack of desired operation of the product may result in personal injury, death, or property damage) other than  
those expressly set forth in applicable Littelfuse product documentation. Warranties granted by Littelfuse shall be deemed void for products used for  
any purpose not expressly set forth in applicable Littelfuse documentation. Littelfuse shall not be liable for any claims or damages arising out of  
products used in applications not expressly intended by Littelfuse as set forth in applicable Littelfuse documentation. The sale and use of Littelfuse  
products is subject to Littelfuse Terms and Conditions of Sale, unless otherwise agreed by Littelfuse.  
.com  
Specifications subject to change without notice. © 2016 Littelfuse, Inc.  
September 19, 2016 − Rev. 8  
1SMC5.0AT3/D  
厂商 型号 描述 页数 下载

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