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增材制造钛合金Ti-6Al-4V的加工技术现状

The State of the Art in Machining Additively Manufactured Titanium Alloy Ti-6Al-4V.

作者信息

Zhang Chen, Zou Dongyi, Mazur Maciej, Mo John P T, Li Guangxian, Ding Songlin

机构信息

School of Engineering, RMIT University, Melbourne, VIC 3083, Australia.

Faculty of Engineering and Information Technology, The University of Melbourne, Melbourne, VIC 3010, Australia.

出版信息

Materials (Basel). 2023 Mar 24;16(7):2583. doi: 10.3390/ma16072583.

Abstract

Titanium alloys are extensively used in various industries due to their excellent corrosion resistance and outstanding mechanical properties. However, titanium alloys are difficult to machine due to their low thermal conductivity and high chemical reactivity with tool materials. In recent years, there has been increasing interest in the use of titanium components produced by additive manufacturing (AM) for a range of high-value applications in aerospace, biomedical, and automotive industries. The machining of additively manufactured titanium alloys presents additional machining challenges as the alloys exhibit unique properties compared to their wrought counterparts, including increased anisotropy, strength, and hardness. The associated higher cutting forces, higher temperatures, accelerated tool wear, and decreased machinability lead to an expensive and unsustainable machining process. The challenges in machining additively manufactured titanium alloys are not comprehensively documented in the literature, and this paper aims to address this limitation. A review is presented on the machining characteristics of titanium alloys produced by different AM techniques, focusing on the effects of anisotropy, porosity, and post-processing treatment of additively manufactured Ti-6Al-4V, the most commonly used AM titanium alloy. The mechanisms resulting in different machining performance and quality are analysed, including the influence of a hybrid manufacturing approach combining AM with conventional methods. Based on the review of the latest developments, a future outlook for machining additively manufactured titanium alloys is presented.

摘要

钛合金因其优异的耐腐蚀性和出色的机械性能而广泛应用于各个行业。然而,由于钛合金的热导率低且与刀具材料的化学反应性高,因此难以加工。近年来,人们越来越关注使用增材制造(AM)生产的钛部件,用于航空航天、生物医学和汽车行业的一系列高价值应用。与锻造钛合金相比,增材制造的钛合金具有独特的性能,包括各向异性增加、强度和硬度提高,这使得增材制造钛合金的加工面临额外的挑战。相关的更高切削力、更高温度、刀具磨损加速以及可加工性降低导致加工过程成本高昂且不可持续。文献中并未全面记录增材制造钛合金加工中的挑战,本文旨在解决这一局限性。本文综述了不同增材制造技术生产的钛合金的加工特性,重点关注增材制造的Ti-6Al-4V(最常用的增材制造钛合金)的各向异性、孔隙率和后处理的影响。分析了导致不同加工性能和质量的机制,包括增材制造与传统方法相结合的混合制造方法的影响。基于对最新进展的综述,给出了增材制造钛合金加工的未来展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0adb/10095803/9ac9ebd20855/materials-16-02583-g001a.jpg

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