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Comparative Investigation of the Structure, Phase Composition, and Mechanical Properties of Ni-Based High-Temperature Alloys Manufactured by Different Methods

机译:不同方法制造的Ni基高温合金结构,相组合物和机械性能的比较研究

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摘要

A comprehensive comparative study of the structure, phase composition, and mechanical properties of heat-resistant nickel-based Ni-Cr-(X) alloys produced by the methods of traditional metallurgy and self-propagating high-temperature synthesis (SHS metallurgy) is carried out. With the purpose of formation of the submicrocrystalline structure, a longitudinal rolling and post-deformation annealing of the cast alloy is performed. The microstructure of the heat-resistant alloys is investigated by the SEM and TEM methods. It is shown that the cast alloy has a recrystallized structure with the mean grain size of ~ 1 μm and the particles of chromium carbides have a size of ~ 1 - 3 μm. After rolling and subsequent annealing (750°C/l h), the average grain size is reduced to 0.43 u.m and the formation of dispersed particles of carbides 100 nm in size is observed. The structure of the alloy obtained by SHS metallurgy is dendritic, and particles of W and Cr are absent. When 0.1 wt % carbon powder is added to the initial powder mixture for SHS synthesis, formation of the network of W and Cr particles is observed along the boundaries of dendrite colonies. It is found that the SHS Ni-based heat-resistant alloy similar in composition to commercial cast alloy is characterized by improved mechanical properties and increased heat resistance compared to the cast alloy in both the coarsegrained and the submicrocrystalline state. Adding the carbon powder to the powder mixture for SHS leads to a further increase in the resistance to high-temperature deformation owing to formation of the carbide phase impeding the movement of dislocations and grain boundary creeping processes.
机译:通过传统冶金和自展高温合成(SHS冶金)的方法,耐热镍基Ni-Cr-(X)合金结构,相组合物和机械性能的综合对比研究出去。在形成亚微晶结构的目的,进行纵向轧制和铸造合金的变形退火。通过SEM和TEM方法研究了耐热合金的微观结构。结果表明,铸造合金具有重结晶结构,其平均晶粒尺寸为约1μm,碳化铬颗粒的尺寸为〜1-3μm。在滚动和随后的退火(750℃/ L H)之后,平均晶粒尺寸降低至0.43 U.m,并且观察到碳化物碳化物颗粒的分散颗粒的尺寸。通过SHS冶金获得的合金的结构是树枝状树枝状,并且不存在W和Cr的颗粒。当向SHS合成的初始粉末混合物中加入0.1wt%碳粉时,沿树突菌落的边界观察W和Cr颗粒网络的形成。结果发现,与商业铸造合金的组合物类似的基于SHS Ni的耐热合金,其特征在于,与氨基晶和亚亚微晶状态的铸造合金相比,改善了机械性能和增加的耐热性。由于形成阻碍位错和晶界蠕变方法的碳化阶段,将碳粉与SHS的粉末混合物中加入SHS的粉末混合物导致耐高温变形的进一步增加。

著录项

  • 来源
    《Inorganic materials: applied research》 |2020年第3期|713-720|共8页
  • 作者单位

    Institute of Problems of Chemical Physics Russian Academy of Sciences Chernogolovka Moscow oblast 142432 Russia National University of Science and Technology MISiS Moscow 119049 Russia;

    Institute of Problems of Chemical Physics Russian Academy of Sciences Chernogolovka Moscow oblast 142432 Russia Belgorod State National Research University Belgorod 308015 Russia;

    Merzhanov Institute of Structural Macrokinetics and Materials Science Russian Academy of Sciences Chernogolovka Moscow oblast 142432 Russia;

    Merzhanov Institute of Structural Macrokinetics and Materials Science Russian Academy of Sciences Chernogolovka Moscow oblast 142432 Russia;

    Merzhanov Institute of Structural Macrokinetics and Materials Science Russian Academy of Sciences Chernogolovka Moscow oblast 142432 Russia;

    Moscow State University Moscow 119991 Russia;

    Belgorod State National Research University Belgorod 308015 Russia;

    Institute of Problems of Chemical Physics Russian Academy of Sciences Chernogolovka Moscow oblast 142432 Russia Belgorod State National Research University Belgorod 308015 Russia;

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

    high-resistant nickel alloys; SHS metallurgy; microstructure; mechanical properties;

    机译:高耐镍合金;SHS冶金;微观结构;机械性能;

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