Effects of Solid Particles at Varying Concentrations on Hydrodynamic Cavitation Evolution in a Nozzle

This study investigated the effects of solid particles at varying concentrations on hydrodynamic cavitation within a nozzle in a solid particle-pure water-hydrodynamic cavitation flow system. Concentrations ranged from 5% to 10%, and mean diameters varied from 0.0015 mm to 0.040 mm. The Zwart-Gerber...

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Main Authors: D. Wang, W. G. Zhao, X. D. Han
Format: Article
Language:English
Published: Isfahan University of Technology 2024-12-01
Series:Journal of Applied Fluid Mechanics
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Online Access:https://www.jafmonline.net/article_2571_72b1d846dbf9ec99ce93fc31524d282a.pdf
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author D. Wang
W. G. Zhao
X. D. Han
author_facet D. Wang
W. G. Zhao
X. D. Han
author_sort D. Wang
collection DOAJ
description This study investigated the effects of solid particles at varying concentrations on hydrodynamic cavitation within a nozzle in a solid particle-pure water-hydrodynamic cavitation flow system. Concentrations ranged from 5% to 10%, and mean diameters varied from 0.0015 mm to 0.040 mm. The Zwart-Gerber-Belamri cavitation model, originally developed for pure water-hydrodynamic cavitation flow, was adapted for the solid particle-pure water-hydrodynamic cavitation flow scenario. A novel algorithm integrating solid, liquid, and vapor phases was developed to facilitate numerical simulations of this flow. Comparisons were made between the vapor contents in solid particle-pure water-hydrodynamic cavitation flow under different concentrations and those in pure water-hydrodynamic cavitation flow to establish variation patterns. Solid particles consistently promoted cavitation evolution across all concentration conditions. However, the range of mean diameter promoting cavitation decreased with increasing concentration. The study analyzed variations in solid particle properties, flow fields, and the forces acting on solid particles to elucidate the underlying mechanisms. Solid particles induced a greater number of cavitation nuclei. In the solid particle-pure water-hydrodynamic cavitation flow, the maximum and minimum slip velocities, as well as the maximum and minimum turbulent kinetic energies, were higher than those in pure water-hydrodynamic cavitation flow, establishing these factors as primary influencers. Conversely, the Saffman lift force was relatively small, rendering its effects as secondary. The combined effects of these factors contributed to the distinctive evolution of hydrodynamic cavitation within the nozzle.
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spelling doaj-art-1e09ef52cc1f4e3d9f63aedb14431b4d2024-12-09T07:47:36ZengIsfahan University of TechnologyJournal of Applied Fluid Mechanics1735-35721735-36452024-12-0118248550310.47176/jafm.18.2.28072571Effects of Solid Particles at Varying Concentrations on Hydrodynamic Cavitation Evolution in a NozzleD. Wang0W. G. Zhao1X. D. Han2College of Energy and Power Engineering, Lanzhou University of Technology, Lanzhou 730050, ChinaCollege of Energy and Power Engineering, Lanzhou University of Technology, Lanzhou 730050, ChinaNorinco Group Testing and Research Institute, Xi’an 710116, ChinaThis study investigated the effects of solid particles at varying concentrations on hydrodynamic cavitation within a nozzle in a solid particle-pure water-hydrodynamic cavitation flow system. Concentrations ranged from 5% to 10%, and mean diameters varied from 0.0015 mm to 0.040 mm. The Zwart-Gerber-Belamri cavitation model, originally developed for pure water-hydrodynamic cavitation flow, was adapted for the solid particle-pure water-hydrodynamic cavitation flow scenario. A novel algorithm integrating solid, liquid, and vapor phases was developed to facilitate numerical simulations of this flow. Comparisons were made between the vapor contents in solid particle-pure water-hydrodynamic cavitation flow under different concentrations and those in pure water-hydrodynamic cavitation flow to establish variation patterns. Solid particles consistently promoted cavitation evolution across all concentration conditions. However, the range of mean diameter promoting cavitation decreased with increasing concentration. The study analyzed variations in solid particle properties, flow fields, and the forces acting on solid particles to elucidate the underlying mechanisms. Solid particles induced a greater number of cavitation nuclei. In the solid particle-pure water-hydrodynamic cavitation flow, the maximum and minimum slip velocities, as well as the maximum and minimum turbulent kinetic energies, were higher than those in pure water-hydrodynamic cavitation flow, establishing these factors as primary influencers. Conversely, the Saffman lift force was relatively small, rendering its effects as secondary. The combined effects of these factors contributed to the distinctive evolution of hydrodynamic cavitation within the nozzle.https://www.jafmonline.net/article_2571_72b1d846dbf9ec99ce93fc31524d282a.pdfsolid particle-pure water-hydrodynamic cavitation flowsolid particle concentrationsolid particle mean diameternozzlenumerical simulation
spellingShingle D. Wang
W. G. Zhao
X. D. Han
Effects of Solid Particles at Varying Concentrations on Hydrodynamic Cavitation Evolution in a Nozzle
Journal of Applied Fluid Mechanics
solid particle-pure water-hydrodynamic cavitation flow
solid particle concentration
solid particle mean diameter
nozzle
numerical simulation
title Effects of Solid Particles at Varying Concentrations on Hydrodynamic Cavitation Evolution in a Nozzle
title_full Effects of Solid Particles at Varying Concentrations on Hydrodynamic Cavitation Evolution in a Nozzle
title_fullStr Effects of Solid Particles at Varying Concentrations on Hydrodynamic Cavitation Evolution in a Nozzle
title_full_unstemmed Effects of Solid Particles at Varying Concentrations on Hydrodynamic Cavitation Evolution in a Nozzle
title_short Effects of Solid Particles at Varying Concentrations on Hydrodynamic Cavitation Evolution in a Nozzle
title_sort effects of solid particles at varying concentrations on hydrodynamic cavitation evolution in a nozzle
topic solid particle-pure water-hydrodynamic cavitation flow
solid particle concentration
solid particle mean diameter
nozzle
numerical simulation
url https://www.jafmonline.net/article_2571_72b1d846dbf9ec99ce93fc31524d282a.pdf
work_keys_str_mv AT dwang effectsofsolidparticlesatvaryingconcentrationsonhydrodynamiccavitationevolutioninanozzle
AT wgzhao effectsofsolidparticlesatvaryingconcentrationsonhydrodynamiccavitationevolutioninanozzle
AT xdhan effectsofsolidparticlesatvaryingconcentrationsonhydrodynamiccavitationevolutioninanozzle