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冷轧或沉淀硬化处理对富钛亚稳中熵合金的微观结构、力学性能及耐腐蚀性的影响

Effects of Cold Rolling or Precipitation Hardening Treatment on the Microstructure, Mechanical Properties, and Corrosion Resistance of Ti-Rich Metastable Medium-Entropy Alloys.

作者信息

Hsu Hsueh-Chuan, Wong Ka-Kin, Wu Shih-Ching, Huang Chun-Yu, Ho Wen-Fu

机构信息

Department of Dental Technology and Materials Science, Central Taiwan University of Science and Technology, Taichung 40601, Taiwan.

Department of Chemical and Materials Engineering, National University of Kaohsiung, Kaohsiung 81148, Taiwan.

出版信息

Materials (Basel). 2023 Dec 8;16(24):7561. doi: 10.3390/ma16247561.

Abstract

Titanium-rich metastable medium-entropy alloys, designed for low elastic moduli, sacrifice strength. However, enhancing their mechanical strength is crucial for bio-implant applications. This study aims to enhance the mechanical properties and corrosion resistance of a metastable Ti-Nb-Mo-Sn medium-entropy alloy using various treatments, including cold rolling (at 50% and 75% reduction) and precipitation hardening (at room temperature, 150 °C, 350 °C, 550 °C, and 750 °C). The results showed that the alloy underwent a stress-induced martensitic transformation during the rolling process. Notably, the α phase was precipitated in the β grain boundaries after 30 days of precipitation hardening at room temperature. The yield strengths of the alloy increased by 51% and 281.9% after room-temperature precipitation and 75% cold rolling, respectively. In potentiodynamic corrosion tests conducted in phosphate-buffered saline solution, the pitting potentials of the alloy treated using various conditions were higher than 1.8 V, and no pitting holes were observed on the surface of the alloys. The surface oxide layer of the alloy was primarily composed of TiO, NbO, MoO, and SnO, contributing to the alloy's exceptional corrosion and pitting resistance. The 75% rolled Ti-Nb-Mo-Sn demonstrates exceptional mechanical properties and high corrosion resistance, positioning it as a promising bio-implant candidate.

摘要

为实现低弹性模量而设计的富钛亚稳中熵合金牺牲了强度。然而,提高其机械强度对于生物植入应用至关重要。本研究旨在通过各种处理方法,包括冷轧(压下率分别为50%和75%)和沉淀硬化(在室温、150℃、350℃、550℃和750℃下)来提高亚稳Ti-Nb-Mo-Sn中熵合金的力学性能和耐腐蚀性。结果表明,该合金在轧制过程中发生了应力诱导马氏体转变。值得注意的是,在室温下进行30天沉淀硬化后,α相在β晶界析出。室温沉淀和75%冷轧后,合金的屈服强度分别提高了51%和281.9%。在磷酸盐缓冲盐溶液中进行的动电位腐蚀试验中,各种处理条件下的合金点蚀电位均高于1.8V,且合金表面未观察到点蚀孔。合金的表面氧化层主要由TiO、NbO、MoO和SnO组成,这有助于提高合金的耐腐蚀性和抗点蚀性。75%轧制的Ti-Nb-Mo-Sn表现出优异的力学性能和高耐腐蚀性,使其成为一种有前途的生物植入候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8427/10744552/dc79fa5ed52e/materials-16-07561-g001.jpg

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