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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 >Microstructure evolution, mechanical properties and strengthening mechanism of refractory high-entropy alloy matrix composites with addition of TaC
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Microstructure evolution, mechanical properties and strengthening mechanism of refractory high-entropy alloy matrix composites with addition of TaC

机译:难敏高熵合金基质复合材料加入TAC的微观结构演化,力学性能和强化机理

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摘要

This study focuses on novel refractory MoNbRe0.5W(TaC)(x), high-entropy alloy matrix composites synthesized by vacuum arc melting. The microstructure evolution, compressive mechanical properties at room temperature and strengthening mechanism of the composites with addition of TaC are analyzed and discussed. The MoNbRe0.5W(TaC)(x) composites consist of a BCC solid solution as the matrix and an eutectic microstructure (BCC and multi-component carbide (Mo, Nb, W, Ta)C phases) at grain boundaries. The lamellar eutectic structure would be formed from the decomposition of subcarbide (Mo, Nb, W, Ta)(2)C and the fully solid solubility of Re. The MoNbRe0.5W(TaC)(0.5 )composite has the maximum failure strain of 10.25%. The MoNbRe0.5W(TaC)(0.5 )to MoNbRe0.5W(TaC)(0.6 ) composites exhibit excellent comprehensive mechanical properties, with excellent strength and reasonable ductility at room temperature. The reinforcement mechanism of the composites is dominated by precipitation and fine-grained strengthening effect. The good ductility of MoNbRe0.5W(TaC)(0.5 ) composite is contributed to the grain refinement of the BCC matrix phase. (C) 2018 Elsevier B.V. All rights reserved.
机译:本研究专注于通过真空电弧熔化合成的新型难治性Monbre0.5W(TAC)(X),高熵合金基质复合材料。分析并讨论了与添加TAC的室温下的微观结构演化,压缩机械性能和复合材料的加强机理。 Monbre0.5W(TAC)(X)复合材料由BCC固溶体组成,作为基质和晶界的共晶微观结构(BCC和多组分碳化物(Mo,Nb,W,Ta)C相。层状共晶结构将由Subarbide(Mo,Nb,W,Ta)(2)C的分解和Re的完全固体溶解度形成。 Monbre0.5W(TAC)(0.5)复合材料的最大失效应变为10.25%。 Monbre0.5W(TAC)(0.5)至Monbre0.5w(TAC)(0.6)复合材料表现出优异的综合机械性能,室温下具有优异的强度和合理的延展性。复合材料的增强机制由沉淀和细粒度的强化效果主导。 Monbre0.5w(TAC)(0.5)复合材料的良好延性是有助于BCC基质阶段的晶粒细化。 (c)2018年elestvier b.v.保留所有权利。

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