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通过退火热处理实现选择性激光熔化Ti-6Al-4V合金的致密化、定制微观结构及力学性能

Densification, Tailored Microstructure, and Mechanical Properties of Selective Laser Melted Ti-6Al-4V Alloy via Annealing Heat Treatment.

作者信息

Wang Di, Wang Han, Chen Xiaojun, Liu Yang, Lu Dong, Liu Xinyu, Han Changjun

机构信息

School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou 510641, China.

Laboratory of Impact and Safety Engineering, Ministry of Education, Ningbo University, Ningbo 315211, China.

出版信息

Micromachines (Basel). 2022 Feb 19;13(2):331. doi: 10.3390/mi13020331.

Abstract

This work investigated the influence of process parameters on the densification, microstructure, and mechanical properties of a Ti-6Al-4V alloy printed by selective laser melting (SLM), followed by annealing heat treatment. In particular, the evolution mechanisms of the microstructure and mechanical properties of the printed alloy with respect to the annealing temperature near the β phase transition temperature were investigated. The process parameter optimization of SLM can lead to the densification of the printed Ti-6Al-4V alloy with a relative density of 99.51%, accompanied by an ultimate tensile strength of 1204 MPa and elongation of 7.8%. The results show that the microstructure can be tailored by altering the scanning speed and annealing temperature. The SLM-printed Ti-6Al-4V alloy contains epitaxial growth β columnar grains and internal acicular martensitic α' grains, and the width of the β columnar grain decreases with an increase in the scanning speed. Comparatively, the printed alloy after annealing in the range of 750-1050 °C obtains the microstructure consisting of α + β dual phases. In particular, network and Widmanstätten structures are formed at the annealing temperatures of 850 °C and 1050 °C, respectively. The maximum elongation of 14% can be achieved at the annealing temperature of 950 °C, which was 79% higher than that of as-printed samples. Meanwhile, an ultimate tensile strength larger than 1000 MPa can be maintained, which still meets the application requirements of the forged Ti-6Al-4V alloy.

摘要

本研究调查了工艺参数对通过选择性激光熔化(SLM)打印并随后进行退火热处理的Ti-6Al-4V合金的致密化、微观结构和力学性能的影响。特别地,研究了打印合金在β相转变温度附近的退火温度下微观结构和力学性能的演变机制。SLM的工艺参数优化可使打印的Ti-6Al-4V合金致密化,相对密度达到99.51%,同时具有1204MPa的极限抗拉强度和7.8%的伸长率。结果表明,通过改变扫描速度和退火温度可以调整微观结构。SLM打印的Ti-6Al-4V合金包含外延生长的β柱状晶粒和内部针状马氏体α'晶粒,β柱状晶粒的宽度随扫描速度的增加而减小。相比之下,在750-1050°C范围内退火后的打印合金获得了由α+β双相组成的微观结构。特别地,在850°C和1050°C的退火温度下分别形成了网络结构和魏氏组织。在950°C的退火温度下可实现14%的最大伸长率,比打印态样品高79%。同时,可以保持大于1000MPa的极限抗拉强度,仍满足锻造Ti-6Al-4V合金的应用要求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d007/8875346/3ae80ad606a6/micromachines-13-00331-g001.jpg

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