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In-Situ Measurements of Load Partitioning in a Metastable Austenitic Stainless Steel: Neutron and Magnetomechanical Measurements

机译:亚稳态奥氏体不锈钢中载荷分配的原位测量:中子和磁机械测量

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In order to construct physically based models of the mechanical response of metastable austenitic steels, one must know the load partitioning between the austenite and the strain-induced martensitic phases. While diffraction-based techniques have become common for such measurements, they often require access to large facilities. In this work, we have explored a simple magnetic technique capable of providing a measure of the stresses in an embedded ferromagnetic phase. This technique makes use of the coupling between the elastic strain and the magnetic response of the $alpha^{prime}$ -martensite in an austenitic stainless steel undergoing straining. The magnetic technique proposed here is compared to neutron diffraction measurements made on the same material and is shown to give nearly identical results. The resulting predictions of the load partitioning to the $alpha^{prime}$ -martensite phase suggest that $alpha^{prime}$ deforms in a complex fashion, reflecting the fact that the microstructure is progressively transformed from austenite to martensite with straining. In particular, it is shown that the apparent hardening of the $alpha^{prime}$ -martensite suggests elastic deformation as an important source of high macroscopic work-hardening rate in this material.
机译:为了建立基于物理的亚稳态奥氏体钢力学响应模型,必须知道奥氏体和应变诱发马氏体相之间的载荷分配。尽管基于衍射的技术已成为此类测量的常用方法,但它们通常需要使用大型设备。在这项工作中,我们探索了一种简单的磁性技术,该技术能够提供对嵌入式铁磁相中应力的测量。该技术利用了在经受应变的奥氏体不锈钢中的$α^ {prime} $-马氏体的弹性应变和磁响应之间的耦合。此处提出的磁性技术与在相同材料上进行的中子衍射测量进行了比较,并显示出几乎相同的结果。负载划分为$ alpha ^ {prime} $-马氏体相的结果预测表明,$ alpha ^ {prime} $以复杂的方式变形,反映出微观结构随着应变逐渐从奥氏体转变为马氏体的事实。特别地,显示出αα-{-马氏体的表观硬化表明弹性变形是这种材料中高宏观加工硬化率的重要来源。

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