直接观察和表征 GH4169 合金中的新型长周期堆叠有序相

IF 4.3 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Fei Liu , Chenghao Zhang , Chunwang Zhao , Huimin Xie , Xiaohu Hou
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引用次数: 0

摘要

众所周知,长周期有序堆积相(LPSO)是稀土镁合金中的重要强化相。LPSO 相不仅能提高合金的强度,还能改善合金的塑性,从而有效解决强度-电导率权衡现象。因此,制备含有 LPSO 相的金属材料为设计新一代高强度、高韧性合金提供了新思路。本研究首次在 GH4169 镍基合金中观察并表征了一种新型纳米级 LPSO 相。结果表明,LPSO 相的堆积序列为 ABCBCBA,表明该 LPSO 相具有 6H 结构。同时,LPSO 相与镍基体之间的取向关系为 (11-1)γ//(0006)LPSO 和 [011]γ//[2-1-10]LPSO。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Direct observation and characterization of a novel long period stacking ordered phase in GH4169 alloy

Direct observation and characterization of a novel long period stacking ordered phase in GH4169 alloy

As is widely recognized, the Long Period Stacking Ordered (LPSO) phase is an important strengthening phase in the rare earth magnesium alloys. The LPSO phase not only enhances the strength of the alloy, but also improves its plasticity, thereby effectively addressing the strength-ductility trade-off phenomenon. Therefore, the preparation of metallic materials containing LPSO phase provides a new idea for designing a new generation of high-strength and high-toughness alloys. In present study, A novel nano-sized LPSO phase is observed and characterized for the first time in GH4169 nickel-based alloy. The results show that the stacking sequence of the LPSO phase is ABCBCBA, which indicates that this LPSO phase has a 6H structure. Meanwhile, the orientation relationships between LPSO phase and the Ni matrix are (11–1)γ//(0006)LPSO and [011]γ//[2-1-10]LPSO.

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来源期刊
Intermetallics
Intermetallics 工程技术-材料科学:综合
CiteScore
7.80
自引率
9.10%
发文量
291
审稿时长
37 days
期刊介绍: This journal is a platform for publishing innovative research and overviews for advancing our understanding of the structure, property, and functionality of complex metallic alloys, including intermetallics, metallic glasses, and high entropy alloys. The journal reports the science and engineering of metallic materials in the following aspects: Theories and experiments which address the relationship between property and structure in all length scales. Physical modeling and numerical simulations which provide a comprehensive understanding of experimental observations. Stimulated methodologies to characterize the structure and chemistry of materials that correlate the properties. Technological applications resulting from the understanding of property-structure relationship in materials. Novel and cutting-edge results warranting rapid communication. The journal also publishes special issues on selected topics and overviews by invitation only.
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