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January 6, 2026Energies0 citationsOpen Access

Near-Field Shock Wave Propagation Modeling and Energy Efficiency Assessment in Underwater Electrical Explosions

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SXShihao XinXZXiaobing ZhangLNLei Ni

Key Points

  • The aim is to investigate how capacitor parameters impact energy efficiency in underwater electrochemical explosions.
  • Integrated spherical and cylindrical shock wave propagation models
  • Theoretical calculations of pulse shock wave energy
  • Experimental validation of models
  • Capacitance increases from 13 J to 100 J raises shock wave energy from 0.051 J to 2.45 J
  • Energy utilization rate improves from 0.39% to 2.45%
  • Energy efficiency remains below 10%

Abstract

This study systematically investigates the influence of capacitor energy storage parameters on the energy utilization efficiency of the underwater electrochemical explosion process. By integrating spherical and cylindrical shock wave propagation models, the pulse shock wave energy under different capacitor energy storage levels was theoretically calculated and experimentally validated. The results indicate that the applicability of the shock wave propagation model depends on the distance and aquatic environment: the spherical model is more suitable for short-distance, deep-water conditions, whereas the cylindrical model performs better for long-distance or shallow-water conditions. Within the energy storage range of up to 100 J, increasing the capacitance significantly enhances both the pulse energy output and energy utilization efficiency. Specifically, as the stored energy increased from 13 J to 100 J, the shock wave energy rose from 0.051 J to 2.45 J, and the energy utilization rate improved from 0.39% to 2.45%. Nevertheless, the overall energy utilization efficiency remains below 10%. This study confirms that rationally configuring capacitor parameters can effectively regulate the discharge process, providing important experimental and theoretical support for optimizing energy utilization efficiency.

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Cite This Study

Xin et al. (2026) studied this question.

synapsesocial.com/papers/695d85413483e917927a4462https://doi.org/10.3390/en19010261
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