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May 31, 2026Electronics0 citationsOpen Access

A Self-Powered, Fast-Response High-Voltage Safety Discharge Topology Based on Cascaded Depletion-Mode NMOS for Compact Pulse Generators

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QLQuanlin LiNorth University of ChinaXCXinya ChengBeijing Institute of TechnologyNYNing YuanTianjin University of Technology

Key Points

  • The central aim is to develop a rapid discharge mechanism for high-voltage generators that minimizes safety hazards from residual energy.
  • Proposed a self-powered fast-response discharge topology utilizing cascaded depletion-mode NMOS transistors.
  • Employed a self-biased feedback loop to ensure fail-safe activation during power loss.
  • Validated theoretical models through simulations and hardware prototype testing a 1200 V/220 nF capacitor.
  • Discharged 1200 V to a safe level in one second.
  • Discharge time was adjustable from 72 milliseconds to 1.02 seconds by modifying the current-limiting resistor.
  • Demonstrated a compact and reliable solution for high-voltage safety.

Abstract

High-voltage short pulse generators play a critical role in medical and industrial applications. However, the presence of residual stored energy can pose significant electrical safety hazards. To mitigate these hazards, the implementation of rapid discharge mechanisms is imperative. To address the limitations of slow passive bleeders and auxiliary-dependent active circuits, and the issue of excessive size for compact pulse generators, this study proposes a self-powered, fast-response discharge topology utilizing cascaded depletion-mode NMOS transistors. The method utilizes the inherent normally-on characteristic of depletion-mode devices to ensure fail-safe activation during power loss, employing a self-biased feedback loop to regulate a constant discharge current. The theoretical models were validated through simulations and a hardware prototype testing a 1200 V/220 nF capacitor. The experimental results demonstrate the capability to successfully discharge 1200 V to a safe level within a span of one second. Additionally, the discharge time can be programmed within the range from 72 milliseconds to 1.02 s by adjusting the current-limiting resistor. In summary, the proposed topology offers a reliable, compact, and adjustable solution for high-voltage safety, addressing the limitations of conventional discharge technologies in terms of volume and speed.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/6a1bd2675783ba022b6fdd94https://doi.org/10.3390/electronics15112346
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