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基于超声纳米晶表面改性技术的轮轨相互作用磨损强化

Wear Enhancement of Wheel-Rail Interaction by Ultrasonic Nanocrystalline Surface Modification Technique.

作者信息

Chang Seky, Pyun Young-Sik, Amanov Auezhan

机构信息

Korea Railroad Research Institute, Uiwang 16105, Korea.

Department of Mechanical Engineering, Sun Moon University, Asan 31456, Korea.

出版信息

Materials (Basel). 2017 Feb 16;10(2):188. doi: 10.3390/ma10020188.

Abstract

In this study, an ultrasonic nanocrystalline surface modification (UNSM) technique was applied to normal and heat-treated rails made of 60 kgK steel to enhance the wear resistance of the wheel-rail interaction. The hardness and compressive residual stress values of the untreated and UNSM-treated rails were measured by the Brinell hardness tester and X-ray diffraction technique, respectively. It was found, according to the measurement results, that the hardness was increased by about 20% and 8%, whereas the compressive residual stress was induced by about 52% and 62% for the UNSM-treated normal and heat-treated rails, respectively. The UNSM-treated normal rail showed a slightly higher hardness than the heat-treated rail. The wear resistance of rails with respect to rotating speed and rolling time was assessed using a rolling contact wear (RCW) tester under dry conditions. The RCW test results revealed that the wear of the UNSM-treated rails was enhanced in comparison with those of the untreated rails. Also, the wear amount of the rails was increased with increasing the rotation speed. The UNSM-treated normal rail exhibited the highest wear resistance with respect to the rotation speed. The wear mechanisms of the rails are also discussed based on microscopic images of the worn out surfaces.

摘要

在本研究中,采用超声纳米晶表面改性(UNSM)技术对60 kgK钢制成的普通轨和热处理轨进行处理,以提高轮轨相互作用的耐磨性。分别使用布氏硬度计和X射线衍射技术测量未处理和经UNSM处理的钢轨的硬度和压缩残余应力值。根据测量结果发现,经UNSM处理的普通轨和热处理轨的硬度分别提高了约20%和8%,而压缩残余应力分别增加了约52%和62%。经UNSM处理的普通轨的硬度略高于热处理轨。在干燥条件下,使用滚动接触磨损(RCW)试验机评估钢轨在转速和滚动时间方面的耐磨性。RCW试验结果表明,与未处理的钢轨相比,经UNSM处理的钢轨磨损加剧。此外,钢轨的磨损量随转速增加而增加。经UNSM处理的普通轨在转速方面表现出最高的耐磨性。还基于磨损表面的微观图像讨论了钢轨的磨损机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0760/5459191/10dd18e92df7/materials-10-00188-g001.jpg

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