Enhancing Tool Performance in High-Speed End Milling of Ti-6Al-4V Alloy: The Role of AlCrN PVD Coatings and Resistance to Chipping Wear

IF 3.3 Q2 ENGINEERING, MANUFACTURING Journal of Manufacturing and Materials Processing Pub Date : 2024-03-29 DOI:10.3390/jmmp8020068
Qianxi He, V. Saciotto, J. M. DePaiva, Monica C. Guimaraes, J. Kohlscheen, Marcelo M. Martins, Stephen C. Veldhuis
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Abstract

The conventional cutting tools used for machining titanium alloys normally experience rapid tool wear, and it is generally difficult to achieve a cutting speed over 60 m/min. In this paper, a comprehensive study on improving the machining of Ti-6Al-4V alloy is presented, focusing on high-speed end milling at 100 m/min. Three different AlCrN PVD-coated cemented carbide tools were employed over cemented solid carbide endmills. The study aimed to understand the factors influencing tool performance and, particularly, the uncommon tool wear behavior characterized by chipping on the rake face. The research methodology involves a detailed investigation of coating properties, mechanical characteristics, surface defects, and tool edge geometries. Mechanical properties were measured to assess the resistance to plastic deformation and impact fatigue fracture resistance. Surface defects were meticulously observed, and tool edge geometries were evaluated through optical microscopies. These analyses uncover the key factors contributing to the best tool performance, notably the resistance to plastic deformation (H3/E2 ratio), impact fatigue fracture resistance, and maintaining uniform tool edge geometries. The results of this study reveal that the moderate stress C3 coating outperformed the other two coatings, exhibiting a 1.5-times-longer tool life, a relatively stable cutting force curve, and favorable friction conditions in the cutting zone.
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提高 Ti-6Al-4V 合金高速端铣加工中的刀具性能:AlCrN PVD 涂层的作用和抗崩角磨损性能
用于加工钛合金的传统切削刀具通常会出现快速刀具磨损,而且切削速度一般很难超过 60 m/min。本文以 100 米/分钟的高速端铣为重点,全面研究了如何改进 Ti-6Al-4V 合金的加工。在硬质合金立铣刀上使用了三种不同的 AlCrN PVD 涂层硬质合金刀具。研究旨在了解影响刀具性能的因素,特别是以耙面崩裂为特征的不常见刀具磨损行为。研究方法包括对涂层性能、机械特性、表面缺陷和刀具边缘几何形状进行详细调查。测量机械性能是为了评估抗塑性变形能力和抗冲击疲劳断裂能力。对表面缺陷进行了细致观察,并通过光学显微镜对工具边缘几何形状进行了评估。这些分析揭示了有助于获得最佳工具性能的关键因素,特别是抗塑性变形能力(H3/E2 比)、抗冲击疲劳断裂能力和保持均匀的工具边缘几何形状。研究结果表明,中等应力 C3 涂层的性能优于其他两种涂层,其刀具寿命是其他两种涂层的 1.5 倍,切削力曲线相对稳定,切削区摩擦条件良好。
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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