SiBar Series, Thyristors

Results:
112
Manufacturer
Series
Capacitance
Voltage - Breakover
Voltage - Off State
Current - Peak Pulse (8/20µs)
Current - Peak Pulse (10/1000µs)
Current - Hold (Ih)
Voltage - On State
Supplier Device Package
Package / Case
Grade
Mounting Type
Qualification
Number of Elements
Results remaining112
Applied Filters:
SiBar
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ImageProduct DetailPriceAvailabilityECAD ModelMounting TypeNumber of ElementsPackage / CaseSupplier Device PackageSeriesVoltage - BreakoverVoltage - Off StateVoltage - On StateCurrent - Peak Pulse (8/20µs)Current - Peak Pulse (10/1000µs)Current - Hold (Ih)CapacitanceGradeQualification
TVB320NSB-L
THYRISTOR 320V 250A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
400V
320V
4 V
250 A
80 A
150 mA
44pF
-
-
TVB320NSC-L
THYRISTOR 320V 400A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
400V
320V
4 V
400 A
100 A
150 mA
71pF
-
-
TVB230-050
THYRISTOR 230V DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
-
230V
-
-
-
-
-
-
-
TVB330-050
THYRISTOR 330V DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
-
330V
-
-
-
-
20pF
-
-
TVB270SC
THYRISTOR 270V 400A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
365V
270V
5 V
400 A
100 A
175 mA
160pF
-
-
TVB170SA
THYRISTOR 170V 150A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
265V
170V
4 V
150 A
50 A
150 mA
35pF
-
-
TVB200SA
THYRISTOR 200V 150A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
320V
200V
5 V
150 A
50 A
175 mA
50pF
-
-
TVB270SA
THYRISTOR 270V 150A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
365V
270V
5 V
150 A
50 A
175 mA
50pF
-
-
TVB170SC
THYRISTOR 170V 400A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
265V
170V
4 V
400 A
100 A
150 mA
125pF
-
-
TVB200SC
THYRISTOR 200V 400A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
320V
200V
5 V
400 A
100 A
175 mA
160pF
-
-
TVB090RSA-L
THYRISTOR 90V 150A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
130V
90V
4 V
150 A
50 A
150 mA
58pF
-
-
TVB065RSA-L
THYRISTOR 65V 150A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
88V
65V
4 V
150 A
50 A
150 mA
79pF
-
-
TVB120RSA-L
THYRISTOR 120V 150A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
160V
120V
4 V
150 A
50 A
150 mA
46pF
-
-
TVB130RSA-L
THYRISTOR 130V 150A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
173V
130V
4 V
150 A
50 A
150 mA
30pF
-
-
TVB025RSC-L
THYRISTOR 25V 400A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
40V
25V
4 V
400 A
100 A
150 mA
65pF
-
-
TVB006SB-L
THYRISTOR 6V 250A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
20V
6V
4 V
250 A
75 A
50 mA
50pF
-
-
TVB400MSC-L
THYRISTOR 400V 300A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
530V
400V
4 V
300 A
100 A
150 mA
30pF
-
-
TVB170RSC-L
THYRISTOR 170V 400A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
220V
170V
4 V
400 A
100 A
150 mA
60pF
-
-
TVB220RSC-L
THYRISTOR 220V 400A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
295V
220V
4 V
400 A
100 A
150 mA
60pF
-
-
TVB200SA-L
THYRISTOR 200V 150A DO214AA
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
1
DO-214AA, SMB
DO-214AA
SiBar
320V
200V
5 V
150 A
50 A
175 mA
50pF
-
-

About  Thyristors

Thyristors are semiconductor devices commonly used in Transient Voltage Suppression (TVS) applications to protect electronic systems from voltage surges or transients. They are specifically designed to provide over-voltage protection by acting as a switch that can rapidly respond to high voltage events. Thyristors have three main states of operation: off-state, on-state, and latching state. In the off-state, the thyristor acts as an open circuit and allows normal current flow in the system. When a voltage surge occurs and exceeds a specific threshold called the breakover voltage, the thyristor enters the on-state. In this state, it behaves like a short circuit, diverting excess current away from sensitive components and protecting them from potential damage. The thyristor remains in the on-state until the current flowing through it drops below a certain level known as the hold current. This drop in current can be triggered by external factors such as a decrease in the transient voltage or the presence of other components in the circuit. Once the hold current is reached, the thyristor returns to the off-state, ready to protect the system against future voltage surges. Thyristors used in TVS applications are designed to handle high surge currents and fast response times, making them suitable for protecting sensitive electronic equipment. They can provide effective protection against various types of transient events, including lightning strikes, electrostatic discharge, and switching noise. Thyristor-based TVS devices are commonly used in a wide range of applications, including power supplies, telecommunications equipment, industrial machinery, automotive electronics, and more. They are reliable and robust devices that help prevent damage to electronic systems caused by voltage surges, ensuring the smooth operation and longevity of the protected equipment. In summary, thyristors are semiconductor devices utilized in TVS applications to protect electronic systems from voltage surges. They function as switches, rapidly transitioning between open and short circuit states in response to over-voltage events. Thyristors offer high surge current handling capabilities and fast response times, making them an effective solution for safeguarding sensitive electronic equipment from transient voltage spikes.