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通过纳秒激光纹理化实现表面功能化以控制水力空化动力学。

Surface functionalization by nanosecond-laser texturing for controlling hydrodynamic cavitation dynamics.

作者信息

Petkovšek Martin, Hočevar Matej, Gregorčič Peter

机构信息

Faculty of Mechanical Engineering, University of Ljubljana, Ljubljana, Slovenia.

Institute of Metals and Technology, Ljubljana, Slovenia.

出版信息

Ultrason Sonochem. 2020 Oct;67:105126. doi: 10.1016/j.ultsonch.2020.105126. Epub 2020 Apr 10.

Abstract

The interaction between liquid flow and solid boundary can result in cavitation formation when the local pressure drops below vaporization threshold. The cavitation dynamics does not depend only on basic geometry, but also on surface roughness, chemistry and wettability. From application point of view, controlling cavitation in fluid flows by surface functionalization is of great importance to avoid the unwanted effects of hydrodynamic cavitation (erosion, noise and vibrations). However, it could be also used for intensification of various physical and chemical processes. In this work, the surfaces of 10-mm stainless steel cylinders are laser textured in order to demonstrate how hydrodynamic cavitation behavior can be controlled by surface modification. The surface properties are modified by using a nanosecond (10-28 ns) fiber laser (wavelength of 1060 nm). In such a way, surfaces with different topographies and wettability were produced and tested in a cavitation tunnel at different cavitation numbers (1.0-2.6). Cavitation characteristics behind functionalized cylindrical surfaces were monitored simultaneously by high-speed visualization (20,000 fps) and high frequency pressure transducers. The results clearly show that cavitation characteristics differ significantly between different micro-structured surfaces. On some surfaces incipient cavitation is delayed and cavitation extent decreased in comparison with the reference - a highly polished cylinder. It is also shown that the increased surface wettability (i.e., hydrophilicity) delays the incipient cavitation.

摘要

当局部压力降至汽化阈值以下时,液流与固体边界之间的相互作用会导致空化形成。空化动力学不仅取决于基本几何形状,还取决于表面粗糙度、化学性质和润湿性。从应用角度来看,通过表面功能化控制流体流动中的空化对于避免水力空化的不良影响(侵蚀、噪声和振动)非常重要。然而,它也可用于强化各种物理和化学过程。在这项工作中,对10毫米不锈钢圆柱体的表面进行激光纹理化处理,以展示如何通过表面改性来控制水力空化行为。使用纳秒(10 - 28纳秒)光纤激光器(波长1060纳米)对表面性能进行改性。通过这种方式,制备了具有不同形貌和润湿性的表面,并在空化隧道中以不同的空化数(1.0 - 2.6)进行测试。通过高速可视化(20,000帧/秒)和高频压力传感器同时监测功能化圆柱表面后的空化特性。结果清楚地表明,不同微结构表面的空化特性存在显著差异。与参考表面——高度抛光的圆柱体相比,某些表面的初始空化延迟,空化程度降低。研究还表明,表面润湿性增加(即亲水性增强)会延迟初始空化。

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