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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Effect of phase transformation on mechanical properties of Al16.80Co20.74Cr20.49Fe21.28Ni20.70 high entropy alloy coatings processed by laser cladding
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Effect of phase transformation on mechanical properties of Al16.80Co20.74Cr20.49Fe21.28Ni20.70 high entropy alloy coatings processed by laser cladding

机译:相变对Al16.80Co20.74CR20.49FE21.28NI20.70的机械性能对激光熔覆加工的高熵合金涂层

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摘要

Eight Al16.80Co20.74Cr20.49Fe21.28Ni20.70 high entropy alloy (HEA) coatings were fabricated by laser cladding with different laser scanning speed. The mechanical properties caused by phase transformation and microstructure evolution of Al16.80Co20.74Cr20.49Fe21.28Ni20.70 HEA coatings were investigated. The experimental results showed that the volume fraction of the FCC phase and the BCC phase in each coating were different depending on laser scanning speed. High laser scanning speed will increase the number of BCC phase. BCC phase was composed of alternate A2 and B2 structure formed by spinodal decomposition. All coatings exhibited a polycrystalline structure composed of uniform equiaxed grains. The grain size of equiaxed grains reduced from 185 to 42 mu m with increased laser scanning speed. The phase-mechanical properties connection at nano-scale were established by nano-hardness mapping and elastic modulus mapping. Furthermore, the micromechanical properties of individual FCC phase and BCC phase were studied by analyzing nanoindentation data statistically. The BCC phases were found to have a higher nano-hardness and elastic modulus than the FCC phases. Therefore, the increment of the BCC phase could significantly enhance the strength and wear resistance of coatings. The optimum wear resistance was obtained in V17, owning a higher volume fraction of BCC (> 90%) and finer grains (75 mu m). In addition, the strengthening mechanism has been discussed. Grain boundary strengthening makes a great contribution to the excellent performance of coatings. (C) 2020 Elsevier B.V. All rights reserved.
机译:八个Al16。80Co20。74Cr20。2月21日。28Ni20。采用不同扫描速度的激光熔覆工艺制备了70层高熵合金(HEA)涂层。研究了Al16的相变和组织演变引起的力学性能。80Co20。74Cr20。2月21日。28Ni20。研究了70种HEA涂层。实验结果表明,不同激光扫描速度的涂层中FCC相和BCC相的体积分数不同。高激光扫描速度会增加BCC相位的数量。BCC相由调幅分解形成的交替A2和B2结构组成。所有涂层均呈现由均匀等轴晶粒组成的多晶结构。随着激光扫描速度的提高,等轴晶的晶粒尺寸从185μm减小到42μm。通过纳米硬度映射和弹性模量映射,建立了纳米尺度下的相-力学性能关系。此外,通过对纳米压痕数据进行统计分析,研究了FCC相和BCC相的微观力学性能。发现BCC相比FCC相具有更高的纳米硬度和弹性模量。因此,BCC相的增加可以显著提高涂层的强度和耐磨性。V17获得了最佳耐磨性,具有更高的BCC体积分数(>90%)和更细的晶粒(75μm)。此外,还对其强化机理进行了探讨。晶界强化对涂层的优异性能有很大贡献。(C) 2020爱思唯尔B.V.版权所有。

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