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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 >Effects of planetary ball milling on AlCoCrFeNi high entropy alloys prepared by Spark Plasma Sintering: Experiments and molecular dynamics study
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Effects of planetary ball milling on AlCoCrFeNi high entropy alloys prepared by Spark Plasma Sintering: Experiments and molecular dynamics study

机译:火花等离子烧结制备的行星球铣削效果:实验与分子动力学研究

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摘要

The elaboration of High Entropy Alloys (HEA) was investigated by means of powder metallurgy. We studied the combination of mechanical activation and reactive sintering in the case of AlCoCrFeNi. Elemental metallic powders were first processed by planetary ball milling over a long duration (28 h). The ratio K between the rotating speed of the sun wheel and the relative rotating speed of the grinding vials was set at 0.2 and 1 corresponding to "medium" energy milling. Given the particular hardness of chromium as compared to other elements, the effect of Cr powder size was investigated and optimized. In addition to experimental characterizations of milled powders, Molecular Dynamics simulations were carried out in order to assess the formation of solid solutions. The activated powders were then consolidated by Spark Plasma Sintering at 1000 degrees C and 1100 degrees C. A nanostructured lamellar microstructure exhibiting the coexistence of the FCC and BCC phases was synthesized by this solid-state route. The sintered materials exhibited hardness of up to 670 HV. Our final results (i.e., after optimization of the milling and sintering parameters) suggest that mechanical activation combined with reactive sintering is an efficient route to elaborate dense HEA materials. (C) 2019 Elsevier B.V. All rights reserved.
机译:通过粉末冶金研究了高熵合金(Hea)的阐述。我们研究了在AlcoCrfeni的情况下机械活化和反应性烧结的组合。首先通过长期(28小时)的行星球铣削来处理元素金属粉末。在磨削小瓶的旋转速度和研磨小瓶的相对旋转速度之间的比率k设定为0.2和1对应于“培养基”能量铣削。鉴于与其他元素相比铬的特定硬度,研究了Cr粉末尺寸的效果并优化。除了研磨粉末的实验表征之外,进行分子动力学模拟,以评估固体溶液的形成。然后通过在1000℃和1100℃下通过火花等离子体烧结固结活性粉末。通过该固态途径合成了表现出FCC和BCC相的共存的纳米结构层状微观结构。烧结材料表现出高达670HV的硬度。我们的最终结果(即,在优化铣削和烧结参数之后)表明,机械激活与反应性烧结相结合,是精致致密HEA材料的有效途径。 (c)2019 Elsevier B.v.保留所有权利。

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