由大地丰度元素组成的热机械加工镁合金中应变分区引起的各向异性

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Jishnu J. Bhattacharyya , Seth Faberman , Aaron Sullivan , Mainak Saha , Taisuke Sasaki , Sean R. Agnew
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引用次数: 0

摘要

以地球上丰富的元素为基础的稀镁合金,如Al、Ca和Zn,具有强度、延展性和可加工性的迷人组合。在加工硬化材料中甚至可以获得更高的强度,而无需对这些合金的先前研究版本进行诱导Guinier-Preston区强化所需的热处理。这是由于比溶解后的晶体结构更强,位错密度高,在较小程度上,球状富锌析出物的精细分布。用弹粘塑性自洽(EVPSC)多晶模型描述了板材的各向异性塑性响应。在轧制引起的应变硬化过程中,晶粒之间的应变分配决定了屈服强度、延展性,尤其是应变硬化各向异性。织构诱导的塑性各向异性是众所周知的,但应变在不同取向晶粒之间的强分配效应对于解释可能被归类为一种应变路径变化(广义包辛格)效应至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Strain partitioning-induced anisotropy in thermomechanically processed magnesium alloys comprised of earth-abundant elements

Strain partitioning-induced anisotropy in thermomechanically processed magnesium alloys comprised of earth-abundant elements
Dilute Mg alloys based upon earth-abundant elements, e.g., Al, Ca, and Zn have attractive combinations of strength, ductility, and workability. Even higher strength can be obtained in work-hardened material without the heat treatments required to induce Guinier-Preston zone strengthening of previously studied versions of these alloys. This stems from a slightly stronger crystallographic texture than is present after solutionizing, a high dislocation density, and to a lesser degree, a fine distribution of globular Zn-rich precipitates. The anisotropic plastic response of sheet material is described using an elasto-viscoplastic self-consistent (EVPSC) polycrystal model. Strain partitioning between grains during rolling-induced strain hardening is held responsible for the yield strength, ductility, and especially, strain hardening anisotropy. Texture-induced plastic anisotropy is well-known, but the effect of strong partitioning of strain between variously oriented grains is critical to explain what may be classified as a sort of strain path change (generalized Bauschinger) effect.
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来源期刊
Scripta Materialia
Scripta Materialia 工程技术-材料科学:综合
CiteScore
11.40
自引率
5.00%
发文量
581
审稿时长
34 days
期刊介绍: Scripta Materialia is a LETTERS journal of Acta Materialia, providing a forum for the rapid publication of short communications on the relationship between the structure and the properties of inorganic materials. The emphasis is on originality rather than incremental research. Short reports on the development of materials with novel or substantially improved properties are also welcomed. Emphasis is on either the functional or mechanical behavior of metals, ceramics and semiconductors at all length scales.
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