变形和热处理对 Ti-Al-Zr-Si 合金结构和耐热性的影响

IF 0.7 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
O. M. Shevchenko, L. D. Kulak, M. M. Kuzmenko, O. Yu. Koval, A. V. Kotko, I. F. Kravchenko, S. O. Firstov
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引用次数: 0

摘要

研究了通过电子束冶炼获得的耐热 Ti-Al-Zr-Si 合金(基 Ti-(6-7)Al-(2-3)Zr-(1-1.5)Si 和附加合金 Ti-(6-7)Al-(3-5)Zr-(1-1.5)Si-(2-4)Sn )。通过锻造和轧制成带材,在β区或(α+β)区上部进行变形。基合金在 α+β 区上部进行轧制,获得了晶粒大小为 10-20 μm 的细粒均匀结构。变形合金的内应力和缺陷次结构加剧了固溶体的分解,促进了均匀分布的硅化物的形成,从而获得了高强度和耐热性能。变形和退火后的 Ti-(6-7)Al-(2-3)Zr-(1-1.5)Si 合金样品在 20、650 和 700°C 下的拉伸试验也显示出相当高的抗拉强度和屈服强度。在 700°C 的工作温度下暴露 20 小时后,结构变得更加平衡,因此变形合金的强度降低,相对伸长率增加。在基合金中添加锆和锡合金会略微增加塑性,降低耐热性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The Influence of the Deformation and Heat Treatment on the Structure and Heat-Resistance of Ti–Al–Zr–Si Alloys

The Influence of the Deformation and Heat Treatment on the Structure and Heat-Resistance of Ti–Al–Zr–Si Alloys

The heat-resistant Ti–Al–Zr–Si alloys (base Ti–(6–7)Al–(2–3) Zr–(1–1.5)Si and additionally alloyed Ti–(6–7)Al–(3–5)Zr–(1–1.5)Si–(2–4)Sn), obtained by electron beam smelting were studied. Deformation was carried out in the β- or upper part of the (α+β)-area by means of forging and rolling into a strip. The base alloy was subjected to rolling in the upper part of the α+β-area, and the fine-grained uniform structure with a grain size of 10–20 μm was obtained. Internal stresses and defective substructure of the deformed alloy intensify the decomposition of the solid solution and promote the formation of evenly distributed dispersed silicides, which allows obtaining high strength and heat resistance characteristics. Tensile tests at 20; 650 and 700°C of the Ti–(6–7)Al–(2–3)Zr–(1–1.5)Si alloy samples after deformation and annealing also showed a rather high level of the tensile strength and yield strength. After 20 h exposure at the operating temperature of 700°C, the structure becomes more equilibrium, due to which the strength of the deformed alloy decreases, and the relative elongation increases. Additional alloying of the base alloy with zirconium and tin slightly increases plasticity and decreases heat-resistant properties.

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来源期刊
Materials Science
Materials Science 工程技术-材料科学:综合
CiteScore
1.60
自引率
44.40%
发文量
63
审稿时长
4-8 weeks
期刊介绍: Materials Science reports on current research into such problems as cracking, fatigue and fracture, especially in active environments as well as corrosion and anticorrosion protection of structural metallic and polymer materials, and the development of new materials.
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