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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 >Arc ablation behavior and microstructure evolution of plastically deformed and micro-alloyed Cu-Cr-Zr alloys
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Arc ablation behavior and microstructure evolution of plastically deformed and micro-alloyed Cu-Cr-Zr alloys

机译:塑性变形和微合金化Cu-Cr-Zr合金的电弧消融行为和微观结构演化

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摘要

Cu-Cr-Zr alloys are often subjected to premature failures due to arc erosion at moment of their breakdown. In this paper, a series of simulated high-voltage arc ablation experiments were conducted to systematically investigate arc ablation characteristics of Cu-Cr-Zr alloys, their microstructure evolutions and anti-ablation properties after plastic deformation and microalloying. Results showed that during their arc ablation processes, a halo pattern was firstly formed on the surface under the action of high-temperature arc. This is followed by partial melting and splashing of Cu, forming of uneven and rough surfaces, and finally significant burning of the alloy. The degree of ablation of alloy is aggravated with the increased breakdown voltage. Due to a combined effect of solid solution strengthening, fine grain strengthening and deformation strengthening, the ablation resistance of the micro-alloyed and plastically deformed alloy has been significantly improved. The breakdown field strengths of commercial Cu -Cr-Zr alloy, heat-treated and deformed one, micro-alloyed and heat-treated one are 1.46 x 10(6) V/m, 1.67 x 10(6) V/m and 1.90 x 10(6) V/m, respectively. However, the breakdown strength of alloys after microalloying is unstable. Results show that there are no preferred phases for the first breakdown of arc ablation of Cu-Cr-Zr alloys. The second-phase particles with high-hardness and high-melting temperature hinder the splashing and flow of the molten copper, and inhibit the movement of the cathode spots during the ablation process. (C) 2019 Elsevier B.V. All rights reserved.
机译:Cu-Cr-Zr合金通常由于在崩溃的时刻而导致的过早故障。本文进行了一系列模拟的高压电弧消融实验,以系统地研究了Cu-Cr-Zr合金的电弧消融特性,它们在塑性变形和微合金化之后的微观结构演进和抗消融性能。结果表明,在其电弧消融过程中,首先在高温弧的作用下在表面上形成光晕图案。接下来是粉末熔化和溅射的Cu,形成不均匀和粗糙表面,最终燃烧合金。通过增加的击穿电压加剧了合金的消融程度。由于固体溶液强化的综合效果,细粒强化和变形强化,微合金化和塑性变形合金的消融抗性得到了显着改善。商业Cu -cr-Zr合金,热处理和变形的击穿场强,微合金化和热处理的探测器为1.46×10(6)v / m,1.67×10(6)v / m和1.90 x 10(6)v / m。然而,微合金化后合金的击穿强度是不稳定的。结果表明,Cu-Cr-Zr合金的第一次击穿的次数没有优选的阶段。具有高硬度和高熔化温度的第二相颗粒阻碍了熔融铜的溅起和流动,并在消融过程中抑制阴极斑点的运动。 (c)2019 Elsevier B.v.保留所有权利。

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