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Damage characteristics and surface description of near-wall materials subjected to ultrasonic cavitation

机译:超声波空化近壁材料的损伤特性和表面描述

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摘要

For the analysis of ultrasonic cavitation erosion on the surface of materials, the ultrasonic cavitation erosion experiments for AlCu4Mgl and Ti6Al4V were carried out, and the changes of surface topography, surface roughness, and Vickers hardness were explored. Cavitation pits gradually expand and deepen with the increase of experiment time, and Ti6Al4V is more difficult to erode by cavitation than AlCu4Mgl. After experiments, the cavitation damage characteristics such as the single pit, the rainbow ring area, the fisheye pit, and some small pits were observed, which can be considered to be induced by a single micro-jet impact, ablation effect caused by the high temperature, micro-jet impingement with a sharp angle, and multibeam micro-jets coupling impact or negative pressure in the local area produced by micro-jet impact, respectively. The surface roughness and Vickers hardness of the material increase slowly after rapid growth at different points in time as the experiment time increases. With the increase of the ultrasonic amplitude, both of them first increase and then decrease after the ultrasonic amplitude is greater than 10.8 mu m. The increases in surface roughness and Vickers hardness tend to decrease as the viscosity coefficient increases. Ultrasonic cavitation can cause submicron surface roughness and increase surface hardness by 20.36%, so it can be used as a surface treatment method.
机译:为了分析材料表面上的超声波空化腐蚀,进行了Alcu4Mg1和Ti6Al4V的超声波空化腐蚀实验,探讨了表面形貌,表面粗糙度和维氏硬度的变化。随着实验时间的增加,空化坑逐渐扩展并加深,并且通过空化比ALCU4MGL更难以侵蚀Ti6Al4V。在实验之后,观察到诸如单坑,彩虹环区域,鱼眼坑和一些小凹坑的空化损伤特性,可以考虑通过单一微喷射冲击,由高的烧蚀效应引起的诱导温度,具有尖锐角度的微喷射冲击,以及通过微喷射冲击产生的局部区域的多射流微喷射耦合或负压。随着实验时间的增加,在不同点在不同点的快速增长后,材料的表面粗糙度和维氏硬度增加。随着超声波幅度的增加,它们都首先增加,然后在超声波振幅大于10.8μm后减少。随着粘度系数的增加,表面粗糙度和维氏硬度的增加趋于降低。超声波空化可引起亚微米表面粗糙度并提高表面硬度20.36%,因此可以用作表面处理方法。

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