| Image | Part Number | Manufacturer | Description | Series | Packaging | Mounting Type | Actuator Type | RoHS Status | Manufacturer Part Number | Voltage - DC Spark Over (Nom) | Package / Case | Polarization |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 2037-60-BLF | Bourns, Inc. | GDT 600V 15% 5KA THROUGH HOLE | 2037 | Bulk | Through Hole | - | - | - | 600V | Axial Cylinder | - | |
| 2036-9-C3LF | Bourns, Inc. | GDT 90V 20% 10KA THROUGH HOLE | Mini-TRIGARD™ 2036 | Bulk | Through Hole | - | - | - | 90V | Axial Cylinder, 3 Lead (Radial Bend) | - | |
| SA2-5500-DKB-STD | Bourns, Inc. | GDT 5500V -15%, +20% 5KA T/H | SA2 | Bulk | Through Hole | - | - | - | 5500V | Axial Cylinder, Radial Bend | - | |
| 2036-23-SM-RPLF-H | Bourns, Inc. | HIGH TEMP GDT, 3-ELECTRODE, 230V | TRIGARD® 2036 | Tape & Reel (TR) | Surface Mount | - | - | - | 230V | 3-SMD Cylinder Square End | - | |
| B88069X9120B502 | EPCOS | GDT 350V 20% 10KA T/H FAIL SHORT | - | Bulk | Through Hole | - | - | - | 350V | Axial Cylinder, 3 Lead (Radial Bend) | - | |
| 2036-25-C3FLF | Bourns, Inc. | GDT 250V 20% 10KA T/H FAIL SHORT | Mini-TRIGARD™ 2036 | Bulk | Through Hole | - | - | - | 250V | Axial Cylinder, 3 Lead (Radial Bend) | - | |
| B88069X1420C102 | EPCOS | GDT 230V 20% 20KA | A83-A230X | Bulk | User Defined | - | - | - | 230V | Cylinder No Lead | - | |
| 2026-40-CBF | Bourns, Inc. | GDT 400V 20% 20KA T/H FAIL SHORT | TRIGARD® 2026 | Tube | Through Hole | - | - | - | 400V | Axial Cylinder, 3 Lead (T-Shape) | - | |
| 2037-42-BLF | Bourns, Inc. | GDT 420V 15% 5KA THROUGH HOLE | 2037 | Bulk | Through Hole | - | - | - | 420V | Axial Cylinder | - | |
| SL1021A600R | Hamlin / Littelfuse | GDT 600V 10KA THROUGH HOLE | SL1021A | Tray | Through Hole | - | - | - | 600V | Axial Cylinder, 3 Lead (Radial Bend) | - |
Gas Discharge Tube Arresters (GDTs) are vital components in the electronics industry designed to protect electronic circuits from voltage surges and transient events. GDTs work by providing a path for high-voltage surges to discharge safely, preventing damage to sensitive components. Widely used in applications such as telecommunications, power distribution, and industrial electronics, GDTs play a crucial role in ensuring the reliability and longevity of electronic systems by diverting excess energy away from critical components.