Harnessing Hydrodynamic Cavitation for Surface Modification and Strengthening

Hao Pang, G. Ngaile
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Abstract

Hydrodynamic cavitation shows promise for surface modification and strengthening. While previous research has explored its potential for surface hardening and polishing, the application of cavitation for surface texturing remains relatively unexplored. This paper aims to investigate the feasibility of using hydrodynamic cavitation for surface texturing and hardening, as well as identify the key process parameters that influence the outcomes. Computational fluid dynamics (CFD) simulations are utilized to analyze the behavior of cavitation under various conditions, and experimental validation is conducted. The study examines the influence of different chamber insert geometries on cavitation intensity and energy release. It also investigates the effect of process parameters on surface morphology and hardness. The results demonstrate that hydrodynamic cavitation can effectively strengthen specific regions of interest when the cavitation intensity is controlled. However, the formation of surface texture through plastic deformation may be limited to ductile materials or those with low yield strength. The study highlights the significance of utilizing suitable cavitation generators capable of continuously generating cavitation for consistent and controlled intensity. Preliminary results suggest that innovative vortex-based devices have the potential to deliver controlled cavitation intensity to desired areas.
利用水动力空化技术进行表面改性和强化
流体动力空化有望实现表面改性和强化。虽然之前的研究已经探索了空化在表面硬化和抛光方面的潜力,但空化在表面纹理加工方面的应用仍相对欠缺。本文旨在研究将流体动力空化用于表面纹理和硬化的可行性,并确定影响结果的关键工艺参数。本文利用计算流体动力学(CFD)模拟来分析各种条件下的空化行为,并进行了实验验证。研究考察了不同腔室插入物几何形状对空化强度和能量释放的影响。研究还探讨了工艺参数对表面形态和硬度的影响。结果表明,在控制空化强度的情况下,流体动力空化可以有效地强化特定区域。然而,通过塑性变形形成的表面纹理可能仅限于韧性材料或屈服强度较低的材料。这项研究强调了使用合适的空化发生器的重要性,这种发生器能够持续产生空化,并能控制空化强度。初步结果表明,基于涡流的创新装置有可能将可控空化强度传递到所需区域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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