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December 9, 2025Water2 citationsOpen Access

Evaluation of the Biological Efficiency of Water Disinfection Using High-Frequency Electrical Discharge

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NANurgul AlmuratovaADAkerke DyussenbiyevaMZMakpal Zharkymbekova

Key Points

  • This research aims to evaluate the biological efficiency of water disinfection using high-frequency electrical discharge.
  • Conducted theoretical and experimental investigations on high-frequency electrical discharge water disinfection.
  • Inactivated E. coli, S. aureus, and P. aeruginosa bacteria by 99.2–99.9% within 20 seconds of plasma exposure.
  • Established optimal operating parameters: voltage 12–18 kV, frequency ≈ 35 kHz, gap distance 15 mm.
  • Measured normalized specific energy input (SEI) for plasma treatment systems.
  • Achieved 30–40% lower SEI compared to previous plasma systems.
  • Developed a validated physicochemical model confirming predictive capability with R2 ≥ 0.95.
  • Highlighted practical applications for decentralized and industrial water treatment systems.

Abstract

The object of this research is the process of water disinfection by means of high-frequency electrical discharge. The study addresses the problem of achieving high biological efficiency while reducing energy consumption and avoiding harmful by-products typical of traditional methods such as chlorination or UV irradiation. As a result, a comprehensive theoretical and experimental investigation was conducted, demonstrating that within 20 s of plasma exposure, E. coli, S. aureus, and P. aeruginosa bacteria were inactivated by 99.2–99.9%. The observed efficiency is explained by the synergistic action of reactive oxygen and nitrogen species (•OH, O3, H2O2, NO2−, NO3−) formed in the plasma–water interface. The distinctive features of the obtained results include the establishment of optimal operating parameters-voltage U = 12–18 kV, frequency f ≈ 35 kHz, and gap distance d = 15 mm—under which the normalized specific energy input (SEI) was 6–9 kWh per cubic meter of water. This value represents the standard normalization used for plasma-based treatment systems, where the electrical energy delivered to the reactor is divided by the treated volume (1.0 L in our setup) and scaled to m3 for comparison with other studies, 30–40% lower than in previously reported plasma systems. The validated physicochemical model (Poisson, Navier–Stokes, and continuity equations) matched experimental data with R2 ≥ 0.95, confirming its predictive capability for further scale-up. The practical significance of the results lies in the potential application of this method for decentralized and industrial water treatment systems. The reagent-free, energy-efficient, and environmentally safe nature of the proposed approach makes it suitable for sustainable water purification under real operating conditions.

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Cite This Study

Almuratova et al. (2025) studied this question.

synapsesocial.com/papers/69401d682d562116f28f90dehttps://doi.org/10.3390/w17243482
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