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Microstructure evolution and its effect on creep behavior of single crystal Ni-based superalloys with various orientations

机译:不同取向的单晶Ni基高温合金的组织演变及其对蠕变行为的影响

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摘要

By means of microstructure observation, internal friction stress (IFS) and creep property measurements, the microstructure evolution and its effect on creep behavior of the [001]-, [011]-, and [111]-oriented single crystal Ni-based superalloys are investigated. Results show that the IFSes of the alloys with various orientations during steady-state creep decrease in turn according to the sequence of σ_(i[001]), σ_(i[111] and σ_(i[011], which results in the creep lifetimes of the alloys at 1040 ℃/137 MPa being the [001 ]-oriented alloy > the [111]-oriented alloy > the [011]-oriented alloy. It is determined according to the Schmid factors that the activated slipping systems in the [001]-, [011]- and [111]-oriented alloys during creep are 8, 4 and 6, respecrively. After crept for 50 h at 1040 ℃/137 MPa, the γ' phase in the [001]-oriented alloy is transformed into the N-type rafted structure, the bigger IFS and better creep resistance of the alloy is attributed to the superimposing action of the strain hardening and N-type rafted γ' phase for hindering dislocations motions. During creep, the γ' phase in the [011]-oriented alloy is transformed into the stripe-like rafts along [001 ] direction, the γ_(r(010)) roof and γ_(g(100)) gable channels retained in the one result in a weaker effect on hindering the slipping of dislocations. The lower IFS and weaker creep resistance of the alloy are attributed to the superimposing effect of little strain hardening and stripe-like γ' rafted structure. During creep, the γ' phase in the [111]-oriented alloy is transformed into the mesh-like rafted structure along (010) plane, and a few activated slipping systems cause only weaker strain hardening effect, which has little effect on hindering the dislocations movement But the smaller Schmid factors of slipping systems provides only weaker driving force to promote the slipping of the dislocations. The combined action of the two aspects results in the IFS and creep strength of the [111]-oriented alloy located in between the [001]- and [011]-oriented alloys.
机译:通过显微组织观察,内部摩擦应力(IFS)和蠕变性能测量,观察到[001]-,[011]-和[111]取向的单晶Ni基高温合金的显微组织演变及其对蠕变行为的影响被调查。结果表明,稳态蠕变期间各种取向的合金的IFS根据σ_(i [001]),σ_(i [111]和σ_(i [011]的顺序依次减小。 [001]取向合金> [111]取向合金> [011]取向合金在1040℃/ 137 MPa时的蠕变寿命,根据Schmid因子确定活化滑移体系[001]-,[011]-和[111]-取向合金的蠕变分别为8、4和6,在1040℃/ 137 MPa蠕变50h后,[001]-中的γ'相取向合金转变为N型筏结构,其更大的IFS和更好的抗蠕变性归因于应变硬化和N型筏γ'相对位错运动的叠加作用。 [011]取向合金中的α相沿[001]方向转变为条纹状筏,γ_(r(010))顶和γ_(g(100))山形槽重新形成一方面,它对阻碍位错滑移的作用较弱。合金的IFS较低和抗蠕变性较弱是由于应变硬化少和条状γ'筏结构的叠加效应所致。在蠕变过程中,[111]取向合金中的γ'相沿(010)平面转变为网状筏结构,少数活化滑移系统仅引起较弱的应变硬化作用,而对阻碍合金的作用很小。位错运动但是,滑移系统的较小Schmid因子仅提供较弱的驱动力来促进位错的滑动。这两个方面的共同作用导致位于[001]和[011]取向合金之间的[111]取向合金的IFS和蠕变强度。

著录项

  • 来源
    《Materials Science and Engineering 》 |2016年第21期| 243-254| 共12页
  • 作者单位

    School of Materials Science and Engineering, Shenyang University of Technology, Shenyang 110870, China,School of Energy and Power Engineering, Shenyang University of Chemical Technology, Shenyang 110142, China;

    School of Materials Science and Engineering, Shenyang University of Technology, Shenyang 110870, China;

    Science and Technology on Advanced High Temperature Structural Materials Laboratory, Beijing Key Laboratory of Aeronautical Materials Testing and Evaluation, AVIC Beijing Institute of Aeronautical Materials, Beijing 100095, China;

    School of Materials Science and Engineering, Shenyang University of Technology, Shenyang 110870, China;

    School of Materials Science and Engineering, Shenyang University of Technology, Shenyang 110870, China;

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

    Single crystal Ni-based superalloy; Orientations; Creep; Microstructure evolution; Internal friction stress; Deformation mechanism;

    机译:单晶镍基高温合金;方向;蠕变;微观组织演变;内摩擦应力;变形机制;

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