Structure and wear characteristics of cast iron after laser surface modification

S. I. Yares’ko, G. Guseva, V. I. Shcherbakov, P. V. Kazakevich
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Abstract

The paper presents the results of studies of macro- and microstructure of alloyed chromium-vanadium cast iron after laser treatment (LT) in air using a continuous laser source with a variation in its power from 60 to 100 W and scanning speed of the laser beam varying from 5 to 17 mm/s. Metallography and durometry methods were used to determine composition and structure of the laser exposure zones (LEZ). It is shown that LT with a slight melting of the surface leads to a significant increase in microhardness in LEZ. In this case, martensite is the main structure in the near-surface layer of LEZ in the melting zone, and ledeburite structure prevails in the quenching zone. For the studied LT modes, LEZ depth is 220 – 310 μm. At the same time, microhardness is more than 2.5 – 4.2 times higher than microhardness of the base metal and reaches 820 HV0.1, that is a significant factor in increasing the wear resistance of the material. On the contrary, no significant structural changes were found in the case of LT without melting the surface. In order to identify the role of LT in wear of cast iron, sliding friction tests were carried out according to the “disk – finger” scheme at a pressure in the contact zone of 12.5 MPa and indenter rotation speed of 580 rpm. According to the test data, a significant decrease in linear wear and the wear intensity after the surface melting was found. The wear intensity is reduced by more than 100 times, and linear wear – by more than 50 times. The characteristics of LEZ surface cause a decrease in the friction coefficient by 30 % relative to the untreated surface.
激光表面改性后铸铁的结构和磨损特性
本文介绍了在空气中使用连续激光源对铬钒合金铸铁进行激光处理(LT)后的宏观和微观结构的研究结果,激光源的功率从 60 W 到 100 W 不等,激光束的扫描速度从 5 mm/s 到 17 mm/s 不等。金相学和硬度计方法用于确定激光照射区(LEZ)的成分和结构。结果表明,表面轻微熔化的 LT 会导致 LEZ 的显微硬度显著增加。在这种情况下,熔化区 LEZ 近表面层的主要结构是马氏体,而淬火区的主要结构是斑沸石。在所研究的 LT 模式中,LEZ 深度为 220 - 310 μm。同时,显微硬度是基体金属显微硬度的 2.5 - 4.2 倍以上,达到 820 HV0.1,这是提高材料耐磨性的一个重要因素。相反,在不熔化表面的情况下,LT 没有发现明显的结构变化。为了确定 LT 在铸铁磨损中的作用,按照 "圆盘-手指 "方案进行了滑动摩擦试验,接触区压力为 12.5 兆帕,压头转速为 580 转/分钟。试验数据显示,表面熔化后,线性磨损和磨损强度显著降低。磨损强度降低了 100 多倍,线性磨损降低了 50 多倍。与未经处理的表面相比,LEZ 表面的特性使摩擦系数降低了 30%。
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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