Reducing plastic anisotropy through stress induced martensitic transformation in an additively manufactured metastable medium entropy alloy

IF 7 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Science and Engineering: A Pub Date : 2025-06-01 Epub Date: 2025-04-08 DOI:10.1016/j.msea.2025.148308
Sri Bala Aditya Malladi , Tatiana Mishurova , Vishnu Anilkumar , Bharat Mehta , Alexander Evans , Kumar Babu Surreddi , Malte Blankenburg , Ulrich Lienert , Giovanni Bruno , Sheng Guo , Lars Nyborg
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Abstract

Powder bed fusion laser beam (PBF-LB) is particularly effective for fabricating compositionally complex alloys such as high-entropy alloys (HEAs) or medium-entropy alloys (MEAs). Fabricating non-equiatomic metastable MEAs using PBF-LB can lead to the formation of unique microstructures that enhance the mechanical performance of these alloys. Nevertheless, plastic anisotropy in materials prepared by additive manufacturing routes including PBF-LB remains to be a technical challenge. This work presents the fabrication of a metastable non-equiatomic Co45Cr25(FeNi)30 MEA using PBF-LB. As-printed samples exhibited the formation of nano-scaled ε-martensite (HCP) phase along with the FCC phase. The HCP phase exhibited Shoji-Nishiyama orientation relationship with the FCC phase. High energy synchrotron X-ray diffraction (HEXRD) and electron backscatter diffraction (EBSD) in-situ tensile testing were employed to investigate the influence of the HCP phase on the alloy's deformation behavior. The presence of the HCP phase initiates stress-induced martensitic transformation well below the macroscopic yield strength. This transformation led to the non-linear stress and strain response for the FCC phase. Further straining resulted in significant load partitioning, with the HCP phase taking the majority of the load as it formed, significantly strain hardening the alloy and reducing the plastic anisotropy induced by texture in the as-printed material.
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增材制造亚稳介质熵合金中通过应力诱导马氏体相变降低塑性各向异性
粉末床熔合激光束(PBF-LB)对于制造成分复杂的合金,如高熵合金(HEAs)或中熵合金(MEAs)特别有效。利用PBF-LB制备非等原子亚稳态MEAs可以形成独特的微观结构,从而提高这些合金的机械性能。然而,包括PBF-LB在内的增材制造路线制备的材料的塑性各向异性仍然是一个技术挑战。本文介绍了利用PBF-LB制备亚稳态非等原子Co45Cr25(FeNi)30 MEA的方法。随着FCC相的形成,印刷样品中出现了纳米级ε-马氏体(HCP)相。HCP相与FCC相呈Shoji-Nishiyama取向关系。采用高能同步x射线衍射(HEXRD)和电子背散射衍射(EBSD)原位拉伸试验研究了HCP相对合金变形行为的影响。HCP相的存在导致应力诱导马氏体转变,远低于宏观屈服强度。这种转变导致了FCC阶段的非线性应力应变响应。进一步的拉伸导致了显著的载荷分配,HCP相在形成时承担了大部分载荷,显著地使合金应变硬化,并降低了打印材料中织构引起的塑性各向异性。
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来源期刊
Materials Science and Engineering: A
Materials Science and Engineering: A 工程技术-材料科学:综合
CiteScore
11.50
自引率
15.60%
发文量
1811
审稿时长
31 days
期刊介绍: Materials Science and Engineering A provides an international medium for the publication of theoretical and experimental studies related to the load-bearing capacity of materials as influenced by their basic properties, processing history, microstructure and operating environment. Appropriate submissions to Materials Science and Engineering A should include scientific and/or engineering factors which affect the microstructure - strength relationships of materials and report the changes to mechanical behavior.
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