Achieving high strength and large ductility in a Cr30Co30Ni30Al5Ti5 alloy through intergranular precipitation

IF 11.2 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
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Abstract

Precipitation at grain boundaries is typically not regarded as an efficient method for strengthening materials since it can induce grain boundary embrittlement, which detrimentally affects ductility. In this research, we developed a multi-principal element alloy (MPEA) with the composition Cr30Co30Ni30Al5Ti5 (at.%), incorporating both intragranular and intergranular nanoprecipitates. Utilizing multiscale, three-dimensional, and in-situ electron microscopy techniques, coupled with computational simulations, we established that intergranular nanoprecipitation in this material plays a crucial role in enhancing strength and promoting dislocation plasticity. The structure of intergranular nanoprecipitation comprises multiple phases with varying composition and structure. Despite the diversity, the crystal planes conducive to the easy glide of dislocations are well-matched, allowing for the sustained continuity of dislocation slipping across different phase structures. Simultaneously, this structure generates an undulated stress field near grain boundaries, amplifying the strengthening effect and facilitating multiple slip and cross-slip during deformation. Consequently, it promotes the proliferation and storage of dislocations. As a result, our material exhibits a yield strength of approximately 1010 MPa and an ultimate tensile strength of around 1500 MPa, accompanied by a significant fracture elongation of 41%. Our findings illuminate the potential for harnessing intergranular nanoprecipitation to optimize the strength-ductility trade-off in MPEAs, emphasizing the strategy of leveraging complex compositions for the design of sophisticated functional microstructures.

Abstract Image

通过晶间沉淀实现 Cr30Co30Ni30Al5Ti5 合金的高强度和高延展性
晶界沉淀通常不被视为强化材料的有效方法,因为它会诱发晶界脆化,从而对延展性产生不利影响。在这项研究中,我们开发了一种多主元素合金 (MPEA),其成分为 Cr30Co30Ni30Al5Ti5(at.%),包含晶内和晶间纳米沉淀物。利用多尺度、三维和原位电子显微镜技术,并结合计算模拟,我们确定了这种材料中的晶间纳米沉淀在提高强度和促进位错塑性方面起着至关重要的作用。晶间纳米沉淀的结构由成分和结构各不相同的多相组成。尽管存在多样性,但有利于位错轻松滑动的晶面匹配良好,从而使位错在不同相结构间的滑动持续连续。同时,这种结构在晶界附近产生了起伏的应力场,放大了强化效应,有利于变形过程中的多重滑移和交叉滑移。因此,它促进了位错的扩散和储存。因此,我们的材料屈服强度约为 1010 兆帕,极限拉伸强度约为 1500 兆帕,断裂伸长率高达 41%。我们的研究结果阐明了利用晶间纳米沉淀优化 MPEA 强度-电导率权衡的潜力,强调了利用复杂成分设计复杂功能微结构的策略。
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来源期刊
Journal of Materials Science & Technology
Journal of Materials Science & Technology 工程技术-材料科学:综合
CiteScore
20.00
自引率
11.00%
发文量
995
审稿时长
13 days
期刊介绍: Journal of Materials Science & Technology strives to promote global collaboration in the field of materials science and technology. It primarily publishes original research papers, invited review articles, letters, research notes, and summaries of scientific achievements. The journal covers a wide range of materials science and technology topics, including metallic materials, inorganic nonmetallic materials, and composite materials.
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