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首页> 外文期刊>Materials Science and Engineering >Microstructural evolution and mechanical property of a Ni-Fe-based weld metal during long-term exposure at 650 ℃ and 700 ℃
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Microstructural evolution and mechanical property of a Ni-Fe-based weld metal during long-term exposure at 650 ℃ and 700 ℃

机译:Ni-Fe基焊缝金属在650℃和700℃长期暴露过程中的组织演变和力学性能

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摘要

A newly developed Ni-Fe-based weld metal has been researched for the microstructural and mechanical evolutions during prolonged thermal exposure using scanning electron microscopy and transmission electron microscopy. The M23C6-carbides precipitated at grain boundaries and around the primary (Nb, Ti)C phases in the Ni-Fe-based weld metal during prolonged exposure at 650°C and 700°C. The Cr, Mo-rich sigma(σ) and Cr-rich α-Cr formed as platelets and mainly located in the interdendritic areas during the exposure. σ phase had the orientation relationships of [001]γ//[112̅]σ,(2̅20)γ//(1̅10)σand(2̅2̅0)γ//(111)σwith the γ matrix. Higher (Al + Ti) content accelerated the precipitation of these Cr-rich phases and resulted in a significant deterioration of tensile ductility after 5000h at 700°C. Precipitating and coarsening of spherical γ′ dominated the tensile strength evolution and the optimized γ′ radius with the best tensile strength was estimated to be 21–25nm. (Al + Ti) content had no obvious effect on the γ′ coarsening rate but it affected the γ′ particle densityNsin two sides: On the one hand, higher (Al + Ti) content increased theNs, which increased the 0.2% yield strength (Rp0.2)and tensile strength ( Rm). On the other hand, higher (Al + Ti) content increased the amount of σ phases which induced the γ′ envelopes to form and resulted in the decrease ofNs, and it would decreased the Rp0.2and Rm.
机译:已经使用扫描电子显微镜和透射电子显微镜研究了新开发的镍铁基焊缝金属在长时间热暴露过程中的组织和机械演变。在长时间暴露于650°C和700°C的过程中,M23C6碳化物在Ni-Fe基焊缝金属中的晶界和主要(Nb,Ti)C相周围析出。 Cr,富Mo的σ(σ)和富Cr的α-Cr形成为片状,并且在曝光期间主要位于树突间区域。 σ相与γ矩阵的取向关系为[001]γ// [112̅]σ,(2̅20)γ//(1̅10)σ和(2̅2̅0)γ//(111)σ。较高的(Al + Ti)含量会加速这些富Cr相的析出,并在700°C下经过5000h后导致拉伸延展性显着降低。球形γ'的沉淀和粗化主导了抗拉强度的演变,具有最佳抗拉强度的最佳γ'半径估计为21-25nm。 (Al + Ti)含量对γ'粗化速率没有明显影响,但在两个方面都影响γ'颗粒密度Ns:一方面,较高的(Al + Ti)含量会增加Ns,从而增加0.2%的屈服强度( Rp0.2)和抗拉强度(Rm)。另一方面,较高的(Al + Ti)含量会增加σ相的数量,从而导致γ'包膜的形成并导致Ns的减少,从而降低Rp0.2和Rm。

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  • 来源
    《Materials Science and Engineering 》 |2018年第14期| 240-251| 共12页
  • 作者单位

    CAS Key Laboratory of Nuclear Materials and Safety Assessment, Institute of Metal Research, Chinese Academy of Sciences,University of Chinese Academy of Sciences;

    Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences;

    CAS Key Laboratory of Nuclear Materials and Safety Assessment, Institute of Metal Research, Chinese Academy of Sciences,Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences;

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  • 正文语种 eng
  • 中图分类
  • 关键词

    Long-term thermal exposure; Superalloy; Microstructure; Tensile property; Gamma prime; Sigma phase; Alpha-Cr;

    机译:长期热暴露;高温合金;显微组织;拉伸性能;γ′;σ相;α-Cr;

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