不同状态下电子束冷炉熔炼高强度、高耐蚀性 Ti-0.3Mo-0.8Ni 合金的力学性能和腐蚀行为

IF 6.7 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Meiyu Hou , Hongyan Wang , Peng Shao , Sheng Huang , Ping Ding , Yaoping Xu , Han Xiao , Xuan Chen
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引用次数: 0

摘要

本研究调查了采用电子束冷炉温熔炼(EBCHM)技术熔炼的大尺寸钛-0.3钼-0.8镍(TA10)合金铸锭。研究了原铸态、热轧态和退火态 TA10 合金的微观结构、机械性能和腐蚀行为。结果表明,不同状态的 TA10 合金具有不同的微观结构和性能。铸态 TA10 合金的显微组织呈现出 Widmanstätten α 相,而热轧的 TA10 板材则呈现出纤维状结构,具有明显的轧制流线。650 °C 退火后,晶间 β 相减少,大部分带材 α 相转变为等轴 α 相。随着退火温度升高到 840 ℃,微观结构逐渐从等轴结构转变为双相结构。热轧后,TA10 合金的机械性能得到提高,极限抗拉强度从 386.5 兆帕提高到 610 兆帕。此外,伸长率从 15.6% 增加到 23.3%。在不同温度下退火时,观察到强度有所下降,650 °C 时为 423.5 兆帕,840 °C 时为 478.2 兆帕,而塑性显著增加,650 °C 时为 26.5%,840 °C 时为 28.6%。强度的提高归因于等轴晶结构更好的晶界滑移。钛合金的耐腐蚀性与其微观结构密切相关。浸泡腐蚀试验的结果表明,不同状态下的样品表现出相似的腐蚀行为。此外,热轧 TA10 合金的耐腐蚀性最高,腐蚀速率较低,为 0.34459 毫米/年。铸造 TA10 合金的耐腐蚀性能最低,腐蚀速率较低,为 1.37559 毫米/年。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanical properties and corrosion behavior of electron beam cold hearth melting high strength and high corrosion resistant Ti-0.3Mo-0.8Ni alloy with different states

In this study, a large size Ti-0.3Mo-0.8Ni (TA10) alloy ingot melted by electron beam cold hearth melting (EBCHM) technology was investigated. The microstructure, mechanical properties, and corrosion behavior of as-cast, hot-rolled, and annealed TA10 alloys were investigated. The results show that different states of TA10 alloys have different microstructure and properties. The microstructure of the as-cast TA10 alloy exhibits the Widmanstätten α phase, and the hot-rolled TA10 sheet shows a fibrous structure with an obvious rolling streamline. After 650 °C annealing, the intergranular β phase decreases, and most of the strip α phase changes to the equiaxed α phase. With the annealing temperature increasing to 840 °C, the microstructure gradually changed from an equiaxed structure to a duplex structure. The mechanical properties of the TA10 alloy were enhanced after hot-rolling with an increase in ultimate tensile strength from 386.5 MPa to 610 MPa. Additionally, the elongation increased from 15.6 % to 23.3 %. Upon annealing at varying temperatures, it was observed that the strength decreased, reaching to 423.5 MPa at 650 °C and 478.2 MPa at 840 °C, while the plasticity increased significantly, reaching to 26.5 % at 650 °C and 28.6 % at 840 °C. The improved strength was attributed to the better grain boundary slip of the equiaxed structure. The corrosion resistance of titanium alloys is closely connected with their microstructure. The results of the immersion corrosion test indicate that the samples in various states exhibit similar corrosion behavior. Additionally, the hot-rolled TA10 alloy shows the highest corrosion resistance, with a lower corrosion rate of 0.34459 mm/year. The as-cast TA10 alloy shows the lowest corrosion resistance, with a lower corrosion rate of 1.37559 mm/year.

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来源期刊
Journal of Science: Advanced Materials and Devices
Journal of Science: Advanced Materials and Devices Materials Science-Electronic, Optical and Magnetic Materials
CiteScore
11.90
自引率
2.50%
发文量
88
审稿时长
47 days
期刊介绍: In 1985, the Journal of Science was founded as a platform for publishing national and international research papers across various disciplines, including natural sciences, technology, social sciences, and humanities. Over the years, the journal has experienced remarkable growth in terms of quality, size, and scope. Today, it encompasses a diverse range of publications dedicated to academic research. Considering the rapid expansion of materials science, we are pleased to introduce the Journal of Science: Advanced Materials and Devices. This new addition to our journal series offers researchers an exciting opportunity to publish their work on all aspects of materials science and technology within the esteemed Journal of Science. With this development, we aim to revolutionize the way research in materials science is expressed and organized, further strengthening our commitment to promoting outstanding research across various scientific and technological fields.
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