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Effect of initial grain sizes on the grain boundary network during grain boundary engineering in Alloy 690

机译:690合金晶界工程过程中初始晶粒尺寸对晶界网络的影响

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摘要

Grain boundary engineering (GBE) has been carried out in nickel-based Alloy 690 with different initial grain sizes. The microstructure evolution during GBE-processing is characterized using electron backscatter diffraction to study the initial grain size effects on the grain boundary network (GBN). The microstructures of the partially recrystallized samples revealed that the GBE-processing is a strain-recrystallization process, during which each grain-cluster is formed by "multiple twinning" starting from a single recrystallization nucleus. Taking into consideration the coincidence site lattices (CSLs) and Σ, which is defined as the reciprocal density of coincidence sites, a high proportion of low-Σ CSL grain boundaries (GBs) and large grain-clusters are found to be the features of GBE-processed GBN. The initial grain size has a combined effect on the low-Σ CSL GBs proportion. A large initial grain size reduces the number of recrystallization nuclei that form, increasing the cluster size, but decreasing twin boundary density. On the other hand, smaller initial grain sizes increase the density of twin boundary after recrystallization, while decreasing grain-cluster size. Neither the grain-cluster size nor the twin boundary density is the sole factor influencing the proportion of low-Σ CSL GBs. The ratio of the grain cluster size over the grain size governs the proportion of low-Σ CSL GBs.
机译:已经在具有不同初始晶粒尺寸的镍基合金690中进行了晶界工程(GBE)。 GBE加工过程中的微观结构演变是通过电子反向散射衍射来表征的,以研究初始晶粒尺寸对晶界网络(GBN)的影响。部分再结晶样品的微观结构表明,GBE加工是应变再结晶过程,在此过程中,每个晶粒团簇都是通过“多次孪生”从单个再结晶核开始形成的。考虑到重合位点晶格(CSLs)和Σ(被定义为重合位点的倒数密度),发现高比例的低ΣCSL晶界(GBs)和大晶粒团簇是GBE的特征处理的GBN。初始晶粒尺寸对低ΣCSL GBs比例有综合影响。较大的初始晶粒尺寸会减少形成的再结晶核的数量,增加簇的尺寸,但降低孪晶边界密度。另一方面,较小的初始晶粒尺寸增加了重结晶后的孪晶边界密度,同时减小了晶粒簇尺寸。晶粒簇大小和孪晶边界密度都不是影响低ΣCSL GBs比例的唯一因素。晶粒团簇尺寸与晶粒尺寸之比决定着低ΣCSL GB的比例。

著录项

  • 来源
    《Journal of Materials Research》 |2013年第9期|1165-1176|共12页
  • 作者单位

    Institute of Materials, Shanghai University, Shanghai 200072, China;

    Institute of Materials, Shanghai University, Shanghai 200072, China Key Laboratory for Microstructures,Shanghai University, Shanghai 200444, China;

    Institute of Materials, Shanghai University, Shanghai 200072, China Key Laboratory for Microstructures,Shanghai University, Shanghai 200444, China;

    Institute of Materials, Shanghai University, Shanghai 200072, China Key Laboratory for Microstructures,Shanghai University, Shanghai 200444, China;

    Institute of Materials, Shanghai University, Shanghai 200072, China Key Laboratory for Microstructures,Shanghai University, Shanghai 200444, China;

    Technical Department, Jiuli Hi-Tech Metals Co., Ltd., Huzhou 313008, China;

    Technical Department, Jiuli Hi-Tech Metals Co., Ltd., Huzhou 313008, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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