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Microstructure evolution, electrical conductivity and mechanical properties of dual-scale Cu_5Zr/ZrB_2 particulate reinforced copper matrix composites

机译:双尺度Cu_5Zr / ZrB_2颗粒增强铜基复合材料的组织演变,电导率和力学性能

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摘要

Cu-0.3 wt% Zr alloys incorporated with varying ZrB2 levels were prepared by adjusting Zr/B addition rates via in-situ synthesis. Micro-scale ZrB2 particles formed through in-situ reactions between Zr and B in copper melt and nano-scale Cu5Zr precipitates formed upon aging treatment. The composites thus produced exhibited desired combination of mechanical properties and electrical conductivity. This paper investigates the effects of cryorolling and aging treatment on the microstructures and properties of the composites. Compared with traditional rolling process, the ultimate tensile strength of cryorolled Cu-0.3Zr-1ZrB(2) composites increased from 541.9 MPa to 599.6 MPa without sacrificing too much electrical conductivity. The contributions of different strengthening mechanisms due to the dual-scale particles, twins, and dislocations were quantitatively calculated and the results showed good agreement with the experimentally measured data. Also revealed in this work is that the mechanical performance of Cu-0.3Zr-xZrB(2) composites is relatively superior with respect to Cu-0.3Zr at 573 K, indicating that ZrB2 is in favor of enhancing the resistance to thermo-softening.
机译:通过原位合成调节Zr / B的添加比例,制备了ZrB2添加量不同的Cu-0.3 wt%Zr合金。通过铜熔体中Zr和B之间的原位反应形成的微米级ZrB2颗粒,以及时效处理后形成的纳米级Cu5Zr沉淀物。由此制得的复合材料表现出所需的机械性能和电导率组合。本文研究了冷轧和时效处理对复合材料组织和性能的影响。与传统轧制工艺相比,低温轧制的Cu-0.3Zr-1ZrB(2)复合材料的极限拉伸强度从541.9 MPa增加到599.6 MPa,而不会牺牲太多的电导率。定量计算了由于双尺度粒子,孪晶和位错而引起的不同强化机制的贡献,结果与实验测得的数据吻合良好。在这项工作中还表明,在573 K时,Cu-0.3Zr-xZrB(2)复合材料的机械性能相对于Cu-0.3Zr相对优越,表明ZrB2有助于增强抗热软化性。

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