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Experimental Study of Wear Mechanisms of Cemented Carbide in the Turning of Ti6Al4V

机译:Ti6Al4V车削中硬质合金磨损机理的实验研究

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摘要

Titanium and titanium alloys such as Ti-6Al-4V are generally considered as difficult-to-machine materials. This is mainly due to their high chemical reactivity, poor thermal conductivity, and high strength, which is maintained at elevated temperatures. As a result, the cutting tool is exposed to rather extreme contact conditions resulting in plastic deformation and wear. In the present work, the mechanisms behind the crater and flank wear of uncoated cemented carbide inserts in the turning of Ti6Al4V are characterized using high-resolution scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDS), and high-resolution Auger electron spectroscopy (AES).The results show that, for combinations of low cutting speeds and feeds, crater and flank wear were found to be controlled by an attrition wear mechanism, while for combinations of medium to high cutting speeds and feeds, a diffusion wear mechanism was found to control the wear. For the latter combinations, high-resolution SEM and AES analysis reveal the formation of an approximately 100 nm thick carbon-depleted tungsten carbide (WC)-layer at the cemented carbide/Ti6Al4V interface due to the diffusion of carbon into the adhered build-up layers of work material on the rake and flank surfaces.
机译:钛和钛合金(例如Ti-6Al-4V)通常被认为是难以加工的材料。这主要是由于它们具有较高的化学反应性,较差的导热性和较高的强度(可在高温下保持)。结果,切削工具暴露于相当极端的接触条件下,导致塑性变形和磨损。在目前的工作中,使用高分辨率扫描电子显微镜(SEM),能量色散X射线能谱(EDS)和高光谱分析了Ti6Al4V车削过程中未涂层硬质合金刀片的坑坑和侧面磨损的机理。结果表明,对于低切削速度和进给的组合,发现火山口和后刀面磨损是由磨损磨损机制控制的,而对于中高切削速度和进给的组合则是发现扩散磨损机制可以控制磨损。对于后一种组合,高分辨率SEM和AES分析表明,由于碳扩散到附着的堆积物中,在硬质合金/ Ti6Al4V界面上形成了约100 nm厚的贫碳碳化钨(WC)层。前刀面和侧面上的工作材料层。

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