Note: SSDI Transient Suppressors offer standard Breakdown Voltage Tolerances of + 10% (A) and + 5% (B). For other Voltage and Voltage Tolerances, contact SSDI's
Marketing Department.
DO-5
NOTE:
All specifications are subject to change without notification.
SCD's for these devices should be reviewed by SSDI prior to release.
DATA SHEET #: T00030B
DOC
Solid State Devices, Inc.
14701 Firestone Blvd * La Mirada, Ca 90638
Phone: (562) 404-4474 * Fax: (562) 404-1773
ssdi@ssdi-power.com * www.ssdi-power.com
STD5KA5.0 – STD5KA110
STD5KB5.0 – STD5KB110
Reverse
Stand Off
Voltage
V
WM
Volts
5.0
5.0
6.0
6.0
7.0
7.0
8.0
8.0
9.0
9.0
10.0
10.0
12.0
12.0
14.0
14.0
16.0
16.0
18.0
18.0
20.0
20.0
22.0
22.0
24.0
24.0
26.0
26.0
28.0
28.0
30.0
30.0
33.0
33.0
36.0
36.0
40.0
40.0
43.0
43.0
45.0
45.0
48.0
48.0
ELECTRICAL CHARACTERISTICS
Part
Number
For 5% Voltage
Tolerance specify
“B” in place of “A”
STD5KA5.0
STD5KB5.0
STD5KA6.0
STD5KB6.0
STD5KA7.0
STD5KB7.0
STD5KA8.0
STD5KB8.0
STD5KA9.0
STD5KB9.0
STD5KA10
STD5KB10
STD5KA12
STD5KB12
STD5KA14
STD5KB14
STD5KA16
STD5KB16
STD5KA18
STD5KB18
STD5KA20
STD5KB20
STD5KA22
STD5KB22
STD5KA24
STD5KB24
STD5KA26
STD5KB26
STD5KA28
STD5KB28
STD5KA30
STD5KB30
STD5KA33
STD5KB33
STD5KA36
STD5KB36
STD5KA40
STD5KB40
STD5KA43
STD5KB43
STD5KA45
STD5KB45
STD5KA48
STD5KB48
Breakdown Voltage
V
BR
(note 1)
Min
V
BR
6.4
6.4
6.67
6.67
7.78
7.78
8.89
8.89
10.0
10.0
11.1
11.1
13.3
13.3
15.6
15.6
17.8
17.8
20.0
20.0
22.2
22.2
24.4
24.4
26.7
26.7
28.9
28.9
31.1
31.1
33.3
33.3
36.7
36.7
40.0
40.0
44.4
44.4
47.8
47.8
50.0
50.0
53.3
53.3
Maximum
Reverse
Leakage
Current
Maximum
Peak Pulse
Current
I
PPM
Amps
520
543
439
485
378
417
333
367
295
325
266
294
227
251
194
215
176
176
155
172
139
154
127
141
116
128
107
119
99
110
93
103
85
94
78
85
70
78
65
72
62
69
58
65
Maximum
Clamping Voltage
@
I
PPM (Note 2)
Max
Temperature
Coefficient
Max
V
BR
7.30
7.00
8.15
7.37
9.51
8.6
10.9
9.83
12.2
11.1
13.6
12.3
16.3
14.7
19.1
17.2
21.8
19.7
24.4
22.1
27.1
24.5
29.8
26.9
32.6
29.5
35.3
31.9
38.0
34.4
40.7
36.8
44.9
40.6
48.9
44.2
54.3
49.1
58.4
52.8
61.1
55.3
65.2
58.9
@I
T
mA
50
50
50
50
50
50
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
I
R
@V
WM
I
D
(µA)
2000
2000
5000
5000
1000
1000
150
150
20.0
20.0
15.0
15.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
V
C
Volts
9.6
9.2
11.4
10.3
13.3
12.0
15.0
13.6
16.9
15.4
18.8
17.0
22.0
19.9
25.8
23.2
28.8
28.8
32.2
29.2
35.8
32.4
39.4
35.5
43.0
38.9
46.6
42.1
50.1
45.4
53.5
48.4
59.0
53.3
64.3
58.1
71.4
64.5
76.7
69.4
80.3
72.7
85.5
77.4
V
BR
%/°C
0.057
0.057
0.061
0.061
0.068
0.068
0.075
0.075
0.081
0.081
0.084
0.084
0.088
0.088
0.092
0.092
0.096
0.096
0.098
0.098
0.099
0.099
0.100
0.100
0.101
0.101
0.101
0.101
0.102
0.102
0.103
0.103
0.104
0.104
0.104
0.104
0.105
0.105
0.105
0.105
0.106
0.106
0.106
0.106
For optional high reliability screening or higher zener voltages, consult SSDI MARKETING Department.
Notes:
1. V
BR
measured after I
T
applied for 300 ms. I
T
= Square Wave Pulse or equivalent.
2. Surge Current waveform per “Current Pulse Waveform” graph and Derate per “Peak Pulse Power vs. Temperature Derating Curve” graph.
NOTE:
All specifications are subject to change without notification.
SCD's for these devices should be reviewed by SSDI prior to release.
DATA SHEET #: T00030B
DOC
Solid State Devices, Inc.
14701 Firestone Blvd * La Mirada, Ca 90638
Phone: (562) 404-4474 * Fax: (562) 404-1773
ssdi@ssdi-power.com * www.ssdi-power.com
STD5KA5.0 – STD5KA110
STD5KB5.0 – STD5KB110
Reverse
Stand
Off
Voltage
V
WM
Volts
51.0
51.0
54.0
54.0
58.0
58.0
60.0
60.0
64.0
64.0
70.0
70.0
75.0
75.0
78.0
78.0
85.0
85.0
90.0
90.0
100
100
110
110
ELECTRICAL CHARACTERISTICS
Part
Number
For 5% Voltage
Tolerance specify
“B” in place of “A”
STD5KA51
STD5KB51
STD5KA54
STD5KB54
STD5KA58
STD5KB58
STD5KA60
STD5KB60
STD5KA64
STD5KB64
STD5KA70
STD5KB70
STD5KA75
STD5KB75
STD5KA78
STD5KB78
STD5KA85
STD5KB85
STD5KA90
STD5KB90
STD5KA100
STD5KB100
STD5KA110
STD5KB110
Breakdown Voltage
V
BR
(note 1)
Min
V
BR
56.1
56.7
60.0
60.0
64.4
64.4
66.7
66.7
71.1
71.1
77.6
77.8
83.3
83.3
86.7
86.7
94.9
94.4
100
100
111
111
122
122
Maximum
Reverse
Leakage
Current
Maximum
Peak Pulse
Current
I
PPM
Amps
55
61
52
57
49
53
47
52
44
49
40
44
37
41
36
40
33
36
31
34
28
31
26
28
Maximum
Clamping
Voltage @
Max
Temperature
Coefficient
I
PPM (note 2)
V
C
Volts
91.1
82.4
96.3
87.1
103
94
107
97
114
103
125
113
134
121
126
126
151
137
160
146
179
162
196
177
Max
V
BR
69.3
62.7
73.3
66.3
78.7
71.2
81.5
73.7
96.9
78.6
95.1
86.0
102
92.1
106.0
95.8
115
104
122
111
136
123
149
135
@I
T
mA
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
5.0
I
R
@V
WM
I
D
(µA)
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
10.0
V
BR
%/°C
0.107
0.107
0.107
0.107
0.107
0.107
0.108
0.108
0.108
0.108
0.108
0.108
0.108
0.108
0.108
0.108
0.110
0.110
0.110
0.110
0.110
0.110
0.112
0.112
For optional high reliability screening or higher zener voltages, consult SSDI MARKETING Department.
Notes:
1. V
BR
measured after I
T
applied for 300 ms. I
T
= Square Wave Pulse or equivalent.
2. Surge Current waveform per “Current Pulse Waveform” graph and Derate per “Peak Pulse Power vs. Temperature Derating Curve” graph.
NOTE:
All specifications are subject to change without notification.
SCD's for these devices should be reviewed by SSDI prior to release.
A few days ago, I played with the AD7606 module. AD7606 has two measurable ranges, one is ±5V and the other is ±10V. Because the voltage I want to measure exceeds 10V, it exceeds both ranges, so I won...
Dear experts: I can download programs to the target board through JTAG or SWD using ST-LINK and J-LINK, but when I change to another board, only VDD GND JTMS JCLK is brought out. No matter I use JLINK...
I am confused about the capture function of the LPC2148 timer. Can anyone explain it to me? After I set a pin to the capture function, if I connect this pin to an external clock, can I capture the ris...
MBD (Model Based Design) - Model-based designThe most tedious environment setup...
Configuration of MBD environmentUse Matlab2016A and CCS6.0 for environment configuration
Software to be installed:lIn...
[size=3] Thanks to Samsung's strong promotion, curved screen technology is no longer a new thing. However, the flexible screen, which has been in the research stage, is still unknown to most people. H...
When does op amp stability RO turn into ZO?2006-07-10 Tim Green, Linear Applications Engineering Manager, Burr-Brown Product Line, Texas InstrumentsAn interesting thing happened while writing the “ Si...
There are many different ways of human-computer interaction. The more common ones are listed below:
Mouse interaction: Using a mouse to operate a computer and interact was the most common human...[Details]
If the ultimate form of a car is a silicon-based life form, then in
the field of
intelligent driving
, it has gradually taken on the appearance of a "veteran driver." In
the field of
the ...[Details]
On August 25th, SK Hynix announced that it has completed development and entered mass production of its 321-layer, 2Tb QLC NAND flash memory product. This achievement marks the world's first applic...[Details]
As the scale and business applications of national e-government networks continue to expand, the data and services transmitted over them are becoming increasingly sensitive and critical. To protect...[Details]
The complexity of the integrated circuits (ICs) used in electronic systems in vehicles is increasing. They aim to execute artificial intelligence (AI) algorithms to control autonomous driving funct...[Details]
Normally, we determine our location and where we want to go by comparing our surroundings with observation and simple GPS tools. However, this kind of reasoning is very difficult for self-driving c...[Details]
A multilevel inverter converts a DC signal into a multilevel staircase waveform. Instead of a straight positive-negative output waveform, the output waveform of a multilevel inverter alternates in ...[Details]
On August 22, the Wall Street Journal reported on the 21st local time that the new US government does not plan to acquire equity in semiconductor wafer foundry giant TSMC and Micron, one of the thr...[Details]
Previously, Positive Motion Technology shared with you the firmware upgrade of motion controller, ZBasic program development, ZPLC program development, communication with touch screen and input/out...[Details]
introduction
In recent years, multi-touch has emerged as a new alternative to traditional human-computer interaction. It eliminates the need for keyboards and mice, enabling simultaneous inter...[Details]
summary
Modern cars strive to provide the same comfort and entertainment features found in the home, resulting in explosive growth in demand for electronic control units (ECUs). Howe...[Details]
As the power density of modern electronic systems continues to increase, effective thermal management has become critical to ensuring system performance, reliability, and longevity—especially in hi...[Details]
Blackfin® 16-/32-bit embedded processors offer high performance, low power consumption, flexible software features, and scalability, making them suitable for converged applications such as multi-fo...[Details]
At present, the most troubling thing about pure electric vehicles as new energy sources is not only the range anxiety, but also the disadvantage of long charging time. At present, ternary lithium b...[Details]