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首页> 外文期刊>Materials Science and Engineering >Load partitioning between ferrite/martensite and dispersed nanoparticles of a 9Cr ferritic/martensitic (F/M) ODS steel at high temperatures
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Load partitioning between ferrite/martensite and dispersed nanoparticles of a 9Cr ferritic/martensitic (F/M) ODS steel at high temperatures

机译:高温下9Cr铁素体/马氏体(F / M)ODS钢的铁素体/马氏体与分散的纳米颗粒之间的载荷分配

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摘要

In this study, a high-energy synchrotron radiation X-ray technique was used to investigate the tensile deformation processes of a 9Cr-ODS ferritic/martensitic (F/M) steel at different temperatures. Two minor phases within the 9Cr-ODS F/M steel matrix were identified as Y_2Ti_2O_7 and TiN by the high-energy X-ray diffraction, and confirmed by the analysis using energy dispersive X-ray spectroscopy (EDS) of scanning transmission electron microscope (STEM). The lattice strains of the matrix and particles were measured through the entire tensile deformation process. During the tensile tests, the lattice strains of the ferrite/ martensite and the particles (TiN and Y_2Ti_2O_7) showed a strong temperature dependence, decreasing with increasing temperature. Analysis of the internal stress at three temperatures showed that the load partitioning between the ferrite/martensite and the particles (TiN and Y_2Ti_2O_7) was initiated during sample yielding and reached to a peak during sample necking. At three studied temperatures, the internal stress of minor phases (Y_2Ti_2O_7 and TiN) was about 2 times that of F/M matrix at yielding position, while the internal stress of Y_2Ti_2O_7 and TiN reached about 4.5-6 times and 3-3.5 times that of the F/M matrix at necking position, respectively. It indicates that the strengthening of the matrix is due to minor phases (Y_2Ti_2O_7 and TiN), especially Y_2Ti_2O_7 particles. Although the internal stresses of all phases decreased with increasing temperature from RT to 600 ℃, the ratio of internal stresses of each phase at necking position stayed in a stable range (internal stresses of Y_2Ti_2O_7 and TiN were about 4.5-6 times and 3-3.5 times of that of F/M matrix, respectively). The difference between internal stress of the F/M matrix and the applied stress at 600 ℃ is slightly lower than those at RT and 300 ℃, indicating that the nanoparticles still have good strengthening effect at 600 ℃.
机译:在这项研究中,高能同步辐射X射线技术用于研究9Cr-ODS铁素体/马氏体(F / M)钢在不同温度下的拉伸变形过程。 9Cr-ODS F / M钢基体内的两个次要相通过高能X射线衍射鉴定为Y_2Ti_2O_7和TiN,并通过扫描透射电子显微镜(EDS)的能量色散X射线光谱法(EDS)的分析得到确认(干)。在整个拉伸变形过程中测量基质和颗粒的晶格应变。在拉伸试验中,铁素体/马氏体和颗粒(TiN和Y_2Ti_2O_7)的晶格应变表现出强烈的温度依赖性,并随温度升高而降低。在三个温度下的内部应力分析表明,铁素体/马氏体与颗粒(TiN和Y_2Ti_2O_7)之间的载荷分配在样品屈服过程中开始,并在样品颈缩过程中达到峰值。在三个研究温度下,屈服位置的次要相(Y_2Ti_2O_7和TiN)的内应力约为F / M基体的2倍,而Y_2Ti_2O_7和TiN的内应力分别约为屈服位置的4.5-6倍和3-3.5倍。 F / M矩阵分别位于颈缩位置的角度。这表明基体的强化归因于次要相(Y_2Ti_2O_7和TiN),尤其是Y_2Ti_2O_7粒子。尽管从室温到600℃,所有相的内应力均随温度的升高而减小,但在颈缩位置各相的内应力之比仍处于稳定范围内(Y_2Ti_2O_7和TiN的内应力约为4.5-6倍和3-3.5。分别是F / M矩阵的倍数)。 F / M基体的内应力与600℃时的施加应力之间的差值略低于室温和300℃时,表明纳米粒子在600℃时仍具有良好的增强作用。

著录项

  • 来源
    《Materials Science and Engineering》 |2015年第18期|75-81|共7页
  • 作者单位

    Department of Nuclear, Plasma, and Radiological Engineering, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA,School of Materials Science and Engineering, University of Science and Technology, Beijing 100083, China;

    Nuclear Engineering Division, Argonne National Laboratory, Argonne, IL 60439, USA;

    Department of Nuclear, Plasma and Radiological Engineering, University of Illinois at Urbana-Champaign, IL 61801, USA;

    Department of Nuclear, Plasma and Radiological Engineering, University of Illinois at Urbana-Champaign, IL 61801, USA;

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

    School of Materials Science and Engineering, University of Science and Technology, Beijing 100083, China;

    Department of Nuclear, Plasma and Radiological Engineering, University of Illinois at Urbana-Champaign, IL 61801, USA;

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

    Synchrotron; Tensile deformation; Nanoscale particles; Microstructure;

    机译:同步加速器拉伸变形;纳米级颗粒;微观结构;

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