2035 Series, Gas Discharge Tube Arresters (GDT)

Results:
87
Manufacturer
Series
Voltage - DC Spark Over (Nom)
Package / Case
Tolerance
Mounting Type
Number of Poles
Fail Short
Impulse Discharge Current (8/20µs)
Results remaining87
Applied Filters:
2035
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ImageProduct DetailPriceAvailabilityECAD ModelMounting TypeToleranceNumber of PolesSeriesVoltage - DC Spark Over (Nom)Impulse Discharge Current (8/20µs)Fail ShortPackage / Case
2035-15-BT1
GDT 150V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
150 V
5000A (5kA)
No
Axial Cylinder
2035-35-BT1
GDT 350V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
350 V
5000A (5kA)
No
Axial Cylinder
2035-40-B5
GDT 400V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
400 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-20-BT1LF
GDT 200V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
200 V
5000A (5kA)
No
Axial Cylinder
2035-60-B5
GDT 600V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
600 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-15-BT1LF
GDT 150V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
150 V
5000A (5kA)
No
Axial Cylinder
2035-60-BT1LF
GDT 600V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
600 V
5000A (5kA)
No
Axial Cylinder
2035-47-B5LF
GDT 470V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
470 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-23-B5LF
GDT 230V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
230 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-25-B5LF
GDT 250V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
250 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-47-BT1LF
GDT 470V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
470 V
5000A (5kA)
No
Axial Cylinder
2035-35-B5LF
GDT 350V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
350 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-40-BT1LF
GAS DISCHARGE TUBE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
400 V
5000A (5kA)
No
Axial Cylinder
2035-25-BLF
GDT 250V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
250 V
5000A (5kA)
No
Axial Cylinder
2035-42-SM-RPLF
GDT 420V 5KA 2 POLE SMD
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
±15%
2
2035
420 V
5000A (5kA)
No
2-SMD Cylinder Square End
2035-20-B5
GDT 200V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
200 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-25-B5
GDT 250V 5KA 2 POLE THROUGH HOLE
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Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
250 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-23-B5
GDT 230V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
230 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-30-B5
GDT 300V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
300 V
5000A (5kA)
No
Axial Cylinder, Radial Bend
2035-23-BT1
GDT 230V 5KA 2 POLE THROUGH HOLE
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Quantity
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PCB Symbol, Footprint & 3D Model
Through Hole
±15%
2
2035
230 V
5000A (5kA)
No
Axial Cylinder

About  Gas Discharge Tube Arresters (GDT)

A gas discharge tube (GDT) is a specialized type of electrical protection component that is designed to protect sensitive electronic equipment from voltage spikes and surges. It is typically used in high-voltage applications and is designed to handle large currents and high voltages. The GDT consists of a glass or ceramic tube that is filled with a mixture of inert gases, such as neon, argon, or a combination of both. The tube contains two electrodes at either end and is sealed to prevent the gas from escaping. When a voltage greater than the GDT's rating is applied across the electrodes, the electric field within the tube becomes strong enough to ionize the gas molecules, causing them to release electrons and become conductive. This allows the excess electrical energy to be safely diverted to ground, protecting the connected equipment from damage. GDTs are commonly used in telecommunications equipment, power distribution systems, and other applications where high-voltage surges and transients can pose a risk to sensitive electronics. They are a reliable and effective way to protect against electrical damage and ensure the safe operation of electrical systems.