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January 22, 2026Vehicles0 citationsOpen Access

Ultrasonic–Laser Hybrid Treatment for Cleaning Gasoline Engine Exhaust: An Experimental Study

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BSBauyrzhan SarsembekovMIMadi Sansyzbaevich IssabayevNZNursultan Zharkenov

Key Points

  • To investigate the effectiveness of a hybrid ultrasonic-laser treatment for reducing gasoline engine exhaust toxicity.
  • Developed a hybrid system combining ultrasonic and IR laser modules.
  • Examined four operating modes: no treatment, ultrasound only, laser only, and combined treatment.
  • Measured CH, CO, CO2, O2 concentrations, and exhaust gas temperature at idle and operating speeds.
  • Ultrasound reduced CO concentration by up to 40%.
  • IR laser exposure decreased unburned hydrocarbons CH by 35-40%.
  • Combined treatment reduced CH and CO by 38% and 43%, respectively.
  • More complete oxidation processes were indicated by increased CO2 and decreased O2 content.

Abstract

Vehicle exhaust gases remain one of the key sources of atmospheric air pollution and pose a serious threat to ecosystems and public health. This study presents an experimental investigation into reducing the toxicity of gasoline internal combustion engine exhaust using ultrasonic waves and infrared (IR) laser exposure. An original hybrid system integrating an ultrasonic emitter and an IR laser module was developed. Four operating modes were examined: no treatment, ultrasound only, laser only, and combined ultrasound–laser treatment. The concentrations of CH, CO, CO2, and O2, as well as exhaust gas temperature, were measured at idle and under operating engine speeds. The experimental results show that ultrasound provides a substantial reduction in CO concentration (up to 40%), while IR laser exposure effectively decreases unburned hydrocarbons CH (by 35–40%). The combined treatment produces a synergistic effect, reducing CH and CO by 38% and 43%, respectively, while increasing the CO2 fraction and decreasing O2 content, indicating more complete post-oxidation of combustion products. The underlying physical mechanisms responsible for the purification were identified as acoustic coagulation of particulates, oxidation, and photodissociation of harmful molecules. The findings support the hypothesis that combined ultrasonic and laser treatment can enhance real-time exhaust gas purification efficiency. It is demonstrated that physical treatment of the gas phase not only lowers the persistence of by-products but also promotes more complete oxidation processes within the flow.

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Cite This Study

Sarsembekov et al. (2026) studied this question.

synapsesocial.com/papers/6971be8d642b1836717e3230https://doi.org/10.3390/vehicles8010022
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