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SL1026-400 - Gas Plasma Arrester

Download the SL1026-400 datasheet PDF. This datasheet also covers the SL1026 variant, as both devices belong to the same gas plasma arrester family and are provided as variant models within a single manufacturer datasheet.

Description

The SL1026 Series is a heavy-duty transient suppresser using Gas Plasma technology.

In response to transients that exceed the device's breakover voltage, the device changes from a very high impedance state to a low impedance state to conduct harmful current away from the protected system.

Features

  • RoHS compliant.
  • 55 kA surge capability (single shot) tested with 8/20μS pulse as defined by IEC 61000-4-5.
  • 40 kA surge capability (repetitive).
  • Will protect against Trapezoidal waveforms as specified in RIA 12.
  • Will protect against capacitor discharge voltage transient waveforms as specified in RIA 12.
  • Will protect against double exponential voltage transient waveforms as specified in IEC 571.

📥 Download Datasheet

Note: The manufacturer provides a single datasheet file (SL1026_Littelfuse.pdf) that lists specifications for multiple related part numbers.

Full PDF Text Transcription (Reference)

The following content is an automatically extracted verbatim text from the original manufacturer datasheet and is provided for reference purposes only.

View original datasheet text
Gas Plasma Arrester (GDT) Products SL1026 Series SL1026 Series Gas Plasma Arrester ® Agency Approvals AGENCY ® AGENCY FILE NUMBER E128662 3 Electrode GDT Graphical Symbol a = TIP b = RING a b e = GROUND (centre electrode) e Description The SL1026 Series is a heavy-duty transient suppresser using Gas Plasma technology. In response to transients that exceed the device's breakover voltage, the device changes from a very high impedance state to a low impedance state to conduct harmful current away from the protected system. The SL1026 is designed to protect electrical and electronic equipment such as communications, control and railway systems. Carefully designed geometry ensures against short circuiting if a failure occurs due to conditions and events beyond the design criteria.
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