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Article

The Method of Cleaning Cutting Fluid Using Ultrasonic Treatment

by
Anna Kim
1,
Adil Kadyrov
1,*,
Kirill Sinelnikov
1,
Karibek Sherov
2 and
Vassiliy Yurchenko
1
1
Department of Technological Equipment, Mechanical Engineering and Standardization, Abylkas Saginov Karaganda Technical University, Karaganda 100012, Kazakhstan
2
Department of Technological Machines and Equipment, S. Seifullin Kazakh Agro Technical Research University, Astana 010011, Kazakhstan
*
Author to whom correspondence should be addressed.
Appl. Mech. 2025, 6(4), 83; https://doi.org/10.3390/applmech6040083
Submission received: 6 September 2025 / Revised: 9 November 2025 / Accepted: 13 November 2025 / Published: 18 November 2025

Abstract

Cutting fluids are widely used in mechanical engineering to reduce friction and heat generation during metal machining. However, during operation, these fluids become contaminated with metal particles, dust, and microorganisms, leading to degradation of their functional properties and environmental concerns. This study investigates the ultrasonic cleaning and regeneration of contaminated cutting fluids. A rheological model of the elastic–viscous medium was analyzed, and a physical model describing the ultrasonic cleaning mechanism was proposed. Experimental investigations were conducted to validate the theoretical assumptions. The results confirmed that ultrasonic treatment promotes dispersion and phase separation of the fluid, removes putrefactive odor, and partially destroys microorganisms. The regenerated fluid exhibited enhanced clarity and stability compared with the contaminated samples. The findings contribute to a deeper understanding of the physicochemical processes occurring during ultrasonic treatment and demonstrate the potential of this method for sustainable reuse of cutting fluids in industrial applications.
Keywords: mechanical engineering; cutting fluid in mechanical engineering; viscoelastic-plastic medium; cavitation; coagulation; cleaning efficiency; ultrasonic cleaning; metalworking fluids regeneration; ultrasonic-assisted cleaning; mechanics of materials and fluids mechanical engineering; cutting fluid in mechanical engineering; viscoelastic-plastic medium; cavitation; coagulation; cleaning efficiency; ultrasonic cleaning; metalworking fluids regeneration; ultrasonic-assisted cleaning; mechanics of materials and fluids

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MDPI and ACS Style

Kim, A.; Kadyrov, A.; Sinelnikov, K.; Sherov, K.; Yurchenko, V. The Method of Cleaning Cutting Fluid Using Ultrasonic Treatment. Appl. Mech. 2025, 6, 83. https://doi.org/10.3390/applmech6040083

AMA Style

Kim A, Kadyrov A, Sinelnikov K, Sherov K, Yurchenko V. The Method of Cleaning Cutting Fluid Using Ultrasonic Treatment. Applied Mechanics. 2025; 6(4):83. https://doi.org/10.3390/applmech6040083

Chicago/Turabian Style

Kim, Anna, Adil Kadyrov, Kirill Sinelnikov, Karibek Sherov, and Vassiliy Yurchenko. 2025. "The Method of Cleaning Cutting Fluid Using Ultrasonic Treatment" Applied Mechanics 6, no. 4: 83. https://doi.org/10.3390/applmech6040083

APA Style

Kim, A., Kadyrov, A., Sinelnikov, K., Sherov, K., & Yurchenko, V. (2025). The Method of Cleaning Cutting Fluid Using Ultrasonic Treatment. Applied Mechanics, 6(4), 83. https://doi.org/10.3390/applmech6040083

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