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Tensile Deformation Behavior of Duplex Stainless Steel Studied by In-Situ Time-of-Flight Neutron Diffraction

机译:用原位飞行时间中子衍射研究双相不锈钢的拉伸变形行为

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摘要

For a duplex alloy being subjected to deformation, the different mechanical behaviors of its constituent phases may lead to a nonuniform partition of stresses between phases. In addition, the grain-orientation-dependent elastic/plastic anisotropy in each phase may cause grain-to-grain interactions, which further modify the microscopic load partitioning between phases. In the current work, neutron diffraction experiments on the spectrometer for materials research at temperature and stress (SMARTS) were performed on an austenite-ferrite stainless steel for tracing the evolution of various microstresses during tensile loading, with particular emphasis on the load sharing among grains with different crystallographic orientations. The anisotropic elastic/plastic properties of the duplex steel were simulated using a visco-plastic self-consistent (VPSC) model that can predict the phase stress and the grain-orientation-dependent stress. Material parameters used for describing the constitutive laws of each phase were determined from the measured lattice strain distributions for different diffraction {hkl} planes as well as the laboratorial macroscopic stress-strain curve of the duplex steel. The present investigations provide in-depth understanding of the anisotropic micromechanical behavior of the duplex steel during tensile deformation.
机译:对于经受变形的双相合金,其组成相的不同机械行为可能导致相之间应力的不均匀分配。另外,每个相中依赖于晶粒取向的弹性/塑性各向异性可能引起晶粒间相互作用,这进一步改变了相之间的微观载荷分配。在当前的工作中,在奥氏体-铁素体不锈钢上进行了在温度和应力下用于材料研究的光谱仪的中子衍射实验,以追踪拉伸载荷期间各种微应力的演变,特别着重于晶粒间的载荷分担具有不同的晶体学取向。使用可预测相应力和晶粒取向相关应力的粘塑性自洽(VPSC)模型模拟​​了双相钢的各向异性弹性/塑性性能。根据测量的不同衍射{hkl}面的晶格应变分布以及双相钢的实验室宏观应力-应变曲线,确定用于描述各相本构规律的材料参数。本研究提供了对双相钢拉伸变形过程中各向异性微观力学行为的深入了解。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2008年第13期|3134-3140|共7页
  • 作者单位

    Key Laboratory for Anisotropy and Texture of Materials Ministry of Education Northeastern University Shenyang 110004 China;

    Department of Mechanical Engineering Linköping University S-58183 Linköping Sweden;

    Los Alamos Neutron Scattering Center Los Alamos National Laboratory Los Alamos NM 87545 USA;

    Los Alamos Neutron Scattering Center Los Alamos National Laboratory Los Alamos NM 87545 USA;

    Key Laboratory for Anisotropy and Texture of Materials Ministry of Education Northeastern University Shenyang 110004 China;

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