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Controlled modification of the surface morphology and roughness of stainless steel 316 by a high speed submerged cavitating water jet

机译:高速潜水空化射流可控制地改变不锈钢316的表面形态和粗糙度

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摘要

The aim of this paper is to demonstrate the possibly of using the cavitation phenomenon, primarily a cavitating water jet, for the controlled surface modification of metallic biomaterials. Stainless steel 316 (an austenitic face centered cubic metal) was subjected to high-speed submerged cavitating jets under certain working conditions, and different exposure times. The force generated by the collapse of cavitation bubbles is used to modify the surface topography on micro- and nano levels. Optical microscopy, scanning electron microscopy (SEM), atomic force microscopy (AFM), and interferometric profiling were used to characterize the surface morphology before and after cavitation treatment. The results confirm that at short exposure times, the observed characteristic features in the microstructure - holes and hills without material loss and wavy configuration - can be related to plastic deformation, while longer exposure times lead to erosion accompanied by material loss. The results related to the different stages of cavitation damage demonstrate the possibility to use cavitation as a micro-nano fabrication method for the modification of biomaterial surfaces, e.g. for the controlled and convenient increase of surface roughness.
机译:本文的目的是证明使用空化现象(主要是空化射流)进行金属生物材料的受控表面改性的可能性。在一定的工作条件和不同的暴露时间下,对不锈钢316(奥氏体表面居中的立方金属)进行高速水下气蚀射流。空化气泡破裂产生的力用于在微米和纳米水平上改变表面形貌。光学显微镜,扫描电子显微镜(SEM),原子力显微镜(AFM)和干涉轮廓分析用于表征空化处理前后的表面形态。结果证实,在较短的暴露时间下,观察到的微观结构特征(无材料损失和波浪形的孔和丘陵)可能与塑性变形有关,而较长的暴露时间则导致腐蚀和材料损失。与空化损伤的不同阶段有关的结果表明,有可能使用空化作为微纳米制造方法来修饰生物材料表面,例如:用于控制和方便地增加表面粗糙度。

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