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February 14, 2026Plasma2 citationsOpen Access

Underwater Electrical Explosions of Different Metal Wires on the Microsecond Timescale

RGR. GrikshtasSES. EfimovNAN. Asmedianov

Key Points

  • The aim is to explore underwater electrical explosions of metallic wires and analyze their characteristics on a microsecond timescale.
  • Conducted experiments on underwater electrical explosions using microsecond current pulses
  • Employed current and voltage waveform measurements
  • Utilized streak camera shadow imaging for visual analysis
  • Applied one-dimensional hydrodynamic simulations to characterize explosive behaviors
  • Solid-liquid phase transition occurs later than thermodynamic predictions, while liquid-vapor transition occurs sooner
  • Resistance peaks observed in most materials like Ti, Fe, Ni, and others, unlike Cu and Mo
  • Plasma formed shows lower electron density and temperature compared to sub-microsecond cases
  • Specific action integral values are significantly smaller than those in vacuum wire explosion experiments

Abstract

Underwater electrical explosions of single metallic wires driven by microsecond current pulses are investigated and compared with previously reported sub-microsecond experiments. Current and voltage waveforms, streak camera shadow imaging, and one-dimensional hydrodynamic simulations are employed to characterize how the energy density, energy density deposition rate, and the generated shock waves in water depend on the wire parameters. It was found that, similar to the sub-microsecond timescale, the solid–liquid phase transition occurs later than thermodynamic calculations predicted, while the liquid–vapor phase transition happens sooner than expected, leading to a two-phase coexistence. Additionally, most materials show a notable resistance peak (Ti, Fe, Ni, Zn, Ag, Sn, Ta, Au) compared to a quasi-plateau for Cu and Mo or a continuous increase for Al and Pt. Moreover, the specific action integral values are significantly smaller than those observed in wire explosion experiments in vacuum. Finally, the plasma formed at peak resistive voltage is non-ideal but exhibits lower electron density, ionization degree, and temperature compared to the sub-microsecond case.

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Cite This Study

Grikshtas et al. (2026) studied this question.

synapsesocial.com/papers/699011932ccff479cfe5851chttps://doi.org/10.3390/plasma9010007
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