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首页> 外文期刊>Materials Science and Engineering >Local microstructural characterization of an aged UR45N rolled steel: Application of the nanogauges grating coupled EBSD technique
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Local microstructural characterization of an aged UR45N rolled steel: Application of the nanogauges grating coupled EBSD technique

机译:老化的UR45N轧钢的局部显微组织表征:纳米规光栅耦合EBSD技术的应用

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摘要

In the present article, metallic nanoparticles (NPs) used as nanogauges and electron backscattered diffraction (EBSD) are combined to investigate deformation mechanisms of the UR45 N duplex steel. The kinematic fields bring precious details in the evolution of the local deformation of austenitic and ferritic phases. The crystal-lographic information at the initial stage and in the plastic domain is obtained by the EBSD technique. Strain evolutions in each phase are analyzed. The first strain marks appear in austenite just before the elastoplastic transition. Slip and twinning activities in austenite constitute an important part of the work hardening of the material. The slips in ferrite are visible in the plastic domain and present complex geometry. The role of phase boundaries, which act as strain barrier is highlighted. The incompatibilities of deformations between the two phases modify the deformation mechanism of austenite in comparison with a pure austenitic stainless steel as 316 L. Local interactions between phases during the deformation are analyzed. The strong strain heterogeneities in the plastic domain are analyzed in the kinematic fields. Local evolutions of the deformation are also confronted to the macroscopic behavior of the material.
机译:在本文中,结合用作纳米量规的金属纳米颗粒(NPs)和电子背散射衍射(EBSD),研究了UR45 N双相钢的变形机理。运动场为奥氏体和铁素体相局部变形的演化带来了宝贵的细节。初始阶段和塑性域中的晶体学信息是通过EBSD技术获得的。分析了每个阶段的应变演化。第一应变痕迹出现在弹塑性转变之前的奥氏体中。奥氏体中的滑动和孪生活动是材料硬化的重要组成部分。铁素体中的滑移在塑性域中可见,并且具有复杂的几何形状。强调了相界作为应变屏障的作用。与纯奥氏体不锈钢316 L相比,两相之间的变形不兼容改变了奥氏体的变形机理。分析了变形过程中两相之间的局部相互作用。在运动学领域分析了塑性域中的强应变异质性。变形的局部演化也面临材料的宏观行为。

著录项

  • 来源
    《Materials Science and Engineering》 |2019年第24期|537-551|共15页
  • 作者单位

    Univ Technol Troyes, CNRS, ICD, Lab Syst Mican & Ingn Simultanee,FRE2019,CS 42060, F-10004 Troyes, France|Univ Technol Troyes, CNRS, ICD, Lumiere,Nanomat,Nanotechnol L2n,FRE 2019,CS 42060, F-10004 Troyes, France|EPF Ecole Ingn, ERMESS, 3 Bis Rue Lakanal, F-92330 Sceaux, France;

    Univ Technol Troyes, CNRS, ICD, Lab Syst Mican & Ingn Simultanee,FRE2019,CS 42060, F-10004 Troyes, France;

    CNRS, UMR 7633, Ctr Mat, BP 87, F-91003 Evry, France;

    Univ Technol Troyes, CNRS, ICD, Lumiere,Nanomat,Nanotechnol L2n,FRE 2019,CS 42060, F-10004 Troyes, France;

    EPF Ecole Ingn, ERMESS, 3 Bis Rue Lakanal, F-92330 Sceaux, France|CNRS, UMR 7633, Ctr Mat, BP 87, F-91003 Evry, France;

    Univ Technol Troyes, CNRS, ICD, Lab Syst Mican & Ingn Simultanee,FRE2019,CS 42060, F-10004 Troyes, France;

    Univ Technol Troyes, CNRS, ICD, Lab Syst Mican & Ingn Simultanee,FRE2019,CS 42060, F-10004 Troyes, France;

    EPF Ecole Ingn, ERMESS, 3 Bis Rue Lakanal, F-92330 Sceaux, France;

    EPF Ecole Ingn, ERMESS, 3 Bis Rue Lakanal, F-92330 Sceaux, France;

    CNRS, UMR 7633, Ctr Mat, BP 87, F-91003 Evry, France;

    Univ Technol Troyes, CNRS, ICD, Lumiere,Nanomat,Nanotechnol L2n,FRE 2019,CS 42060, F-10004 Troyes, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Dual phase; Microstructure; Strains; Nanoscale and mechanism of deformation;

    机译:双相;微观结构;应变;纳米尺度和变形机理;

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