航空航天和生物医学应用β钛合金的加工

S. Soundararajan, JITHIN VISHNU, Geetha Manivasagam, N. Muktinutalapati
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引用次数: 12

摘要

高强度重量比、优异的热处理性、高度的淬透性和卓越的冷热加工性等独特的特性组合,使钛合金成为一些航空航天应用的有吸引力的材料。总的来说,钛合金对生物流体环境具有高度的抵抗力;具有高钼当量的β钛合金具有接近人骨的低弹性模量,在生物医学应用中具有特别的吸引力。航空航天用合金的批量加工是通过双真空熔炼和热加工进行的。对钛合金的超溶剂和亚溶剂锻造进行了大量的研究。对于低至中等水平钼当量的合金,亚溶剂锻造被证明可以产生优越的机械性能组合。在β钛合金的热处理方面进行了大量的研究。对钛合金的表面改性也进行了研究。本章试图回顾这些研究,重点是航空航天和生物医学应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Processing of Beta Titanium Alloys for Aerospace and Biomedical Applications
The unique combination of attributes—high strength to weight ratio, excellent heat treatability, a high degree of hardenability, and a remarkable hot and cold workability—has made beta titanium alloys an attractive group of materials for several aerospace applications. Titanium alloys, in general, possess a high degree of resistance to biofluid environments; beta titanium alloys with high molybdenum equivalent have low elastic modulus coming close to that of human bone, making them particularly attractive for biomedical applications. Bulk processing of the alloys for aerospace applications is carried out by double vacuum melting followed by hot working. There have been many studies with reference to super-solvus and sub-solvus forging of beta titanium alloys. For alloys with low to medium level of molybdenum equivalent, sub-solvus forging was demonstrated to result in a superior combination of mechanical properties. A number of studies have been carried out in the area of heat treatment of beta titanium alloys. Studies have also been devoted to surface modification of beta titanium alloys. The chapter attempts to review these studies, with emphasis on aerospace and biomedical applications.
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