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January 14, 2026Sensors0 citationsOpen Access

Measurement and Study of Electric Field Radiation from a High Voltage Pseudospark Switch

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JWJ. X. WangLCLei ChenXYXiao Yu

Key Points

  • This research aims to measure electric field radiation from a high voltage pseudospark switch and its implications for electromagnetic compatibility.
  • Utilized a near-field scanning system with an electro-optic probe to measure radiation.
  • Characterized time-frequency distribution during different switching phases.
  • Examined impacts of circuit parameters and trigger current on radiated fields.
  • Identified peak electric field radiation of 43.99 kV/m near the pseudospark switch.
  • Measured spectral composition extending to 60 MHz, with a primary component at 1.24 MHz and harmonics at 20.14 MHz and 32.33 MHz.
  • Findings provide guidance for the EMC design of pulsed power systems.

Abstract

The pulsed power switch serves as a critical component in pulsed power systems. The electric radiation generated by switching operations threatens the miniaturization of pulsed power systems, causing significant electromagnetic interference (EMI) to nearby signal circuits. The pseudospark switch’s (PSS) exceptionally fast transient response, a key enabler for sophisticated pulsed power systems, is also a major source of severe EMI. This study investigated the electric field radiation from a high voltage PSS within a capacitor discharge unit (CDU), using a near-field scanning system based on an electro-optic probe. The time-frequency distribution of the radiation was characterized, identifying contributions from three sequential stages: the application of the trigger voltage, the main gap breakdown, and the subsequent oscillating high voltage. During the high-frequency oscillation stage, the distribution of the peak electric field radiation aligns with the predictions of the dipole model, with a maximum value of 43.99 kV/m measured near the PSS. The spectral composition extended to 60 MHz, featuring a primary component at 1.24 MHz and distinct harmonics at 20.14 MHz and 32.33 MHz. Additionally, the impacts of circuit parameters and trigger current on the radiated fields were discussed. These results provided essential guidance for the electromagnetic compatibility (EMC) design of highly-integrated pulsed power systems, facilitating more reliable PSS applications.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6966f33213bf7a6f02c0111ehttps://doi.org/10.3390/s26020482
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