Gas Discharge Tube Arresters (GDT)

Image Part Number Description / PDF Quantity Rfq
SL1411A250SM

SL1411A250SM

Wickmann / Littelfuse

GDT 250V 10KA 2 POLE SMD

0

2045-07-BT1LF

2045-07-BT1LF

J.W. Miller / Bourns

GDT 75V 10KA 2 POLE THROUGH HOLE

0

B88069X8740B102

B88069X8740B102

TDK EPCOS

GDT 230V 20KA 3 POLE TH

4927

B88069X1640T902

B88069X1640T902

TDK EPCOS

GDT 90V 5KA 2 POLE SURFACE MOUNT

16687

2027-23-BLF

2027-23-BLF

J.W. Miller / Bourns

GDT 230V 10KA 2 POLE TH

171

2036-47-B9

2036-47-B9

J.W. Miller / Bourns

GDT 470V 10KA 3 POLE TH

0

2026-60-C13

2026-60-C13

J.W. Miller / Bourns

GDT 600V 20KA 3 POLE TH

0

B88069X6100T702

B88069X6100T702

TDK EPCOS

GDT 230V 10KA 3 POLE SMD

0

NTE15049AC

NTE15049AC

NTE Electronics, Inc.

GDT 120V 20KA 2 POLE TH

83

2026-09-C

2026-09-C

J.W. Miller / Bourns

GDT 90V 20KA 3 POLE THROUGH HOLE

0

SL1021A230RF

SL1021A230RF

Wickmann / Littelfuse

GDT 230V 10KA 3 POLE TH

0

GTCS23-750M-R01-2

GTCS23-750M-R01-2

Wickmann / Littelfuse

GDT 75V 1KA 2 POLE SURFACE MOUNT

51354

2036-25-B3

2036-25-B3

J.W. Miller / Bourns

GDT 250V 10KA 3 POLE TH

0

2026-40-CLF

2026-40-CLF

J.W. Miller / Bourns

GDT 400V 20KA 3 POLE TH

0

2036-40-B3FLF

2036-40-B3FLF

J.W. Miller / Bourns

GDT 400V 10KA 3 POLE TH

0

GTCR37-551M-R10-FT

GTCR37-551M-R10-FT

Wickmann / Littelfuse

GDT 550V 10KA 3 POLE TH

0

CG5145L

CG5145L

Wickmann / Littelfuse

GDT 145V 5KA 2 POLE THROUGH HOLE

0

2051-40-SM-RPLF

2051-40-SM-RPLF

J.W. Miller / Bourns

GDT 400V 2KA 2 POLE SMD

1896

2038-23-SM-RPLF

2038-23-SM-RPLF

J.W. Miller / Bourns

GDT 230V 5KA 3 POLE SMD

1005

2056-09-B2FLF

2056-09-B2FLF

J.W. Miller / Bourns

GDT 90V 5KA 3 POLE THROUGH HOLE

0

Gas Discharge Tube Arresters (GDT)

1. Overview

Gas Discharge Tube Arresters (GDT) are voltage-dependent overvoltage protection devices that utilize ionization of gas to divert high-voltage transients to ground. They act as switches that remain non-conductive under normal operating conditions but rapidly transition to a low-impedance state when voltage exceeds a specific threshold. GDTs play a critical role in safeguarding electronic systems from lightning strikes, electrostatic discharge (ESD), and other transient voltage events in telecommunications, power distribution, and industrial automation systems.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Single-Electrode GDTCompact design with one gas chamber, suitable for low-energy transientsConsumer electronics, IoT devices
Multi-Electrode GDTStacked electrodes for higher energy absorption and multi-stage protectionTelecom infrastructure, 5G base stations
Inert Gas GDTUses argon/neon for stable performance in harsh environmentsIndustrial control systems, aerospace
Metal Vapor GDTMercury/xenon vapor for ultra-fast response timesHigh-speed data lines, medical imaging equipment

3. Structure and Components

Typical GDT construction includes:

  • Ceramic or glass cylindrical body with hermetic sealing
  • Tungsten/copper alloy electrodes with precision spacing
  • Inert gas (e.g., argon, neon) or metal vapor filling
  • External insulation coating (epoxy/silicone rubber)
  • Threaded/metallic base for grounding connection

4. Key Technical Specifications

ParameterTypical RangeImportance
DC Spark-over Voltage70V 5kVDetermines trigger threshold
Impulse Spark-over Voltage100V 10kVResponse under fast transients
Max Discharge Current10kA 100kAOverload handling capability
Response Time0.1 s 1 sCritical for ESD protection
Dielectric Strength1kV 20kV/mmPost-event insulation recovery

5. Application Fields

Major industry applications include:

  • Telecommunications: DSL modems, fiber optic transceivers, antenna protection
  • Industrial Automation: PLC systems, motor drives, sensor networks
  • Renewable Energy: Solar inverter DC inputs, wind turbine control cabinets
  • Railway Systems: Signaling equipment, traction converter protection
  • Case Study: 5G Base Station Implementation
    • Multi-electrode GDTs protect RF front-end modules from lightning surges
    • Combined with TVS diodes for multi-level protection architecture
    • Reduces maintenance costs by 40% in coastal deployments

6. Leading Manufacturers and Products

ManufacturerProduct SeriesKey Features
LittelfuseSPA-GDT SeriesHybrid gas-silicon integration, 10kA rating
Bourns2021 SeriesSurface-mount design, 500V breakdown
EatonPulsar GDT100kA max current, UL94 certified
MurataMA48 SeriesNano-coated ceramic body, -55 C~125 C operation

7. Selection Guidelines

Key considerations for GDT selection:

  1. Match breakdown voltage to system operating voltage (min. 1.2x nominal)
  2. Verify discharge current rating exceeds maximum expected surge (IEC 61643-11 compliance)
  3. Consider environmental factors (temperature, humidity, vibration)
  4. Assess mounting requirements (through-hole vs surface-mount)
  5. Coordinate with downstream protection devices for coordinated clamping
  6. Check certification standards (UL, CSA, RoHS)

8. Industry Trends

Future development directions:

  • Miniaturization for high-density PCB applications (sub-5mm diameters)
  • Advanced nanogap technologies for sub-nanosecond response times
  • Integration with AI-based predictive maintenance systems
  • Development of eco-friendly alternative gases to replace SF6
  • Wide bandgap semiconductor hybrid protection devices
  • Increased adoption in EV charging infrastructure (DC fast chargers)

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