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Stress and Strain Partitioning of Ferrite and Martensite during Deformation

机译:铁素体和马氏体变形过程中的应力和应变分配

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摘要

The direct measurement of the stress or strain partitioning during deformation in the materials, consisting of two phases with the same crystallographic structure and different microstructures, is still difficult so far. This is due to the fact that no effective characterization tool is available with the ability to distinguish the local strain and stress at microscale level. In this article, we studied the micromechanical behavior of ferrite/martensite dual-phase (DP) alloys using the in-situ high-energy X-ray diffraction (HEXRD) technique. We established a new method to separate the stress and strain in the ferrite and martensite during loading. Although the ferrite and martensite exhibit the same crystal structure with similar lattice parameters, the dependence of (200) lattice strains on the applied stress is obviously different for each phase. A visco-plastic self-consistent (VPSC) model, which can simulate the micromechanical behavior of two-phase materials, was used to construct the respective constitutive laws for both phases from the experimental lattice strains and to fit the macro-stress-strain curve. The material parameters for each phase extracted from our experiments and simulations could be used for designing other DP alloys and optimizing some complex industrial processes.
机译:到目前为止,仍然难以直接测量材料在变形过程中的应力或应变分配,这些材料由具有相同晶体学结构和不同微结构的两个相组成。这是由于以下事实:没有可用的有效表征工具能够在微观水平上区分局部应变和应力。在本文中,我们使用原位高能X射线衍射(HEXRD)技术研究了铁素体/马氏体双相(DP)合金的微观力学行为。我们建立了一种新的方法来分离加载过程中铁素体和马氏体中的应力和应变。尽管铁素体和马氏体具有相同的晶体结构和相似的晶格参数,但每个相的(200)晶格应变对施加应力的依赖性明显不同。可以通过模拟两相材料的微观力学行为的粘塑性自洽(VPSC)模型,从实验晶格应变构建两个相的各自本构律,并拟合宏观应力-应变曲线。从我们的实验和模拟中提取的每个相的材料参数可用于设计其他DP合金并优化某些复杂的工业流程。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2009年第6期|1383-1387|共5页
  • 作者单位

    Computational Science and Mathematics Division Pacific Northwest National Laboratory Richland WA 99352 USA;

    X-ray Science Division Argonne National Laboratory Argonne IL 60439 USA;

    X-ray Science Division Argonne National Laboratory Argonne IL 60439 USA;

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