Coupling effects of temperature and strain rate on the mechanical behavior and microstructure evolution of a powder-plasma-arc additive manufactured high-entropy alloy with multi-heterogeneous microstructures

IF 8.3 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Acta Materialia Pub Date : 2024-06-27 DOI:10.1016/j.actamat.2024.120147
Jianjun Wang , Hongxu Guo , Zhiming Jiao , Dan Zhao , Xizhang Chen , Shengguo Ma , Tuanwei Zhang , Xiaohuan Liu , Gang Sha , Junwei Qiao , Jamieson Brechtl , Peter K. Liaw , Zhihua Wang
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Abstract

A single-phase or simple-structured alloy does not always possess outstanding combinations of strength and ductility over a wide range of temperatures and strain rates for engineering applications. In the present work, a high-entropy alloy with multi-heterogeneous microstructures was in-situ fabricated via powder-plasma-arc additive manufacturing. The compressive behavior of the additive manufactured high-entropy alloy over a wide range of temperatures and strain rates was studied, using an improved split Hopkinson bar system and electronic universal testing machine. It shows exceptional combination of strength and ductility within the selected temperature and strain rate ranges. Microstructural evolution was characterized at various temperatures and strain rates, providing insight into the intricate relationship between microstructure and property. The multicomponent Laves phase is hard yet deformable, while the multicomponent FCC phase is soft and ductile. The deformation twins observed all over the selected temperature and strain rate ranges and dynamic recrystallization appearing at high temperatures in the FCC phase enhance the ductility of the FCC phase and rise the crack-arresting capability. The third-type strain aging occurs at different strain rates, which shifts to a higher temperature range as strain rate increases. Ta and impurity atom, Si, acting as “solute atoms” form atom atmosphere and silicide, pinning the moving dislocations in the FCC phase. Finally, a deformation mechanism map was proposed over a wide temperature and strain rate range. The study explored a potentially new avenue to design alloys with exceptional combinations of strength and ductility over a wide range of temperatures and strain rates.

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温度和应变率对粉末等离子弧添加剂制造的多异质微结构高熵合金的力学行为和微结构演变的耦合效应
在工程应用中,单相或结构简单的合金并不总能在较宽的温度和应变速率范围内拥有出色的强度和延展性组合。在本研究中,通过粉末等离子弧增材制造技术原位制造了一种具有多异质微结构的高熵合金。使用改进的分体式霍普金森棒系统和电子万能试验机,研究了添加剂制造的高熵合金在宽温度和应变率范围内的抗压行为。在选定的温度和应变率范围内,该合金显示出卓越的强度和延展性组合。在不同的温度和应变速率下,微观结构的演变也各具特色,使人们得以深入了解微观结构与性能之间错综复杂的关系。多组分 Laves 相坚硬但可变形,而多组分 FCC 相柔软且具有延展性。在所选温度和应变速率范围内观察到的变形孪晶以及 FCC 相在高温下出现的动态再结晶增强了 FCC 相的延展性,并提高了抗裂能力。第三类应变时效发生在不同的应变速率下,随着应变速率的增加,应变时效转移到更高的温度范围。Ta和杂质原子Si作为 "溶质原子",形成原子氛和硅化物,将移动位错固定在FCC相中。最后,研究人员提出了在较宽温度和应变率范围内的变形机理图。这项研究为设计在宽温度和应变率范围内具有优异强度和延展性组合的合金探索了一条潜在的新途径。
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来源期刊
Acta Materialia
Acta Materialia 工程技术-材料科学:综合
CiteScore
16.10
自引率
8.50%
发文量
801
审稿时长
53 days
期刊介绍: Acta Materialia serves as a platform for publishing full-length, original papers and commissioned overviews that contribute to a profound understanding of the correlation between the processing, structure, and properties of inorganic materials. The journal seeks papers with high impact potential or those that significantly propel the field forward. The scope includes the atomic and molecular arrangements, chemical and electronic structures, and microstructure of materials, focusing on their mechanical or functional behavior across all length scales, including nanostructures.
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