在激光粉末床熔融 Ti6Al4V 合金中实现原位马氏体分解和增强机械性能的创新制造设计

IF 3.3 Q2 ENGINEERING, MANUFACTURING
B. Farhang, A. Tanrikulu, A. Ganesh-Ram, Sadman Hafiz Durlov, Narges Shayesteh Moghaddam
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引用次数: 0

摘要

Ti6Al4V 合金(Ti64)因其优异的机械性能而成为航空航天、医疗和汽车行业的常用材料。激光粉末床熔融(LPBF)是一种很有前途的制造技术,它能制造出复杂的网状部件,其机械性能与传统制造技术生产的部件相当。然而,在 LPBF 过程中,材料的快速冷却会限制其延展性,因此很难在保持关键应用所需的抗拉强度的同时实现高水平的延展性。为了应对这一挑战,本研究提出了一种新颖的方法,即在 LPBF 期间使用围绕主要部件的边界设计来控制 Ti64 的微观结构。假设这种设计能在制造过程中诱导不同层次的原位马氏体分解,从而增强材料的延展性而不影响其抗拉强度。为了实现这一目标,我们使用 LPBF 制作了一系列具有不同边框设计的 Ti64 样品,包括无边框和有 0.5 至 4 毫米间隙的样品。参考样品的微观结构、成分和机械性能与采用周边边框设计的样品进行了比较。结果发现,后者的微观结构更均匀,密度更高,延展性和拉伸强度都有所提高。此外,研究还发现,可以通过调整边框与主体之间的间隙空间来控制性能改善和马氏体转变的程度,从而为制造工艺提供灵活性。总之,这项研究为提高通过 LPBF 生产的 Ti64 的机械性能提供了一种前景广阔的方法,使其更适用于各行各业的关键应用领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Innovative Fabrication Design for In Situ Martensite Decomposition and Enhanced Mechanical Properties in Laser Powder Bed Fused Ti6Al4V Alloy
Ti6Al4V alloy (Ti64) is a popular material used in the aerospace, medical, and automotive industries due to its excellent mechanical properties. Laser Powder Bed Fusion (LPBF) is a promising manufacturing technique that can produce complex and net-shaped components with comparable mechanical properties to those produced using conventional manufacturing techniques. However, during LPBF, the rapid cooling of the material can limit its ductility, making it difficult to achieve high levels of ductility while maintaining the required tensile strength for critical applications. To address this challenge, this study presents a novel approach to controlling the microstructure of Ti64 during LPBF by using a border design surrounding the main parts. It is hypothesized that the design induces in situ martensitic decomposition at different levels during the fabrication process, which can enhance the ductility of the material without compromising its tensile strength. To achieve this aim, a series of Ti64 samples were fabricated using LPBF with varying border designs, including those without borders and with gaps from 0.5 to 4 mm. The microstructure, composition, and mechanical properties of the Reference sample were compared with those of the samples fabricated with the surrounding border design. It was found that the latter had a more homogenized microstructure, a higher density, and improvements in both ductility and tensile strength. Moreover, it was discovered that the level of property improvement and martensitic transformation can be controlled by adjusting the gap space between the border and the main part, providing flexibility in the fabrication process. Overall, this study presents a promising approach for enhancing the mechanical properties of Ti64 produced via LPBF, making it more suitable for critical applications in various industries.
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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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