Simulated Body Fluid-Assisted Stress Corrosion Cracking of a Rapidly Solidified Magnesium Alloy RS66

Materials Pub Date : 2024-08-09 DOI:10.3390/ma17163967
R. S. Singh Raman, Lokesh Choudhary, Dan Shechtman
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Abstract

This study investigated the simulated body fluid-assisted stress corrosion cracking (SCC) of an Al-free magnesium alloy (RS66) and a common Al-containing magnesium alloy (AZ91), the former being more suitable for temporary implant applications (however, we used AZ91 for comparison since there are considerable reports on SCC in this alloy). The investigation includes SCC tests under simultaneous conditions of mechanical loading and imposed electrochemical potential that established a combined effect of hydrogen and anodic dissolution as the embrittlement mechanism. Though the RS66 alloy possesses impressive mechanical properties in non-corrosive environments (as a result of its fine grain size), both alloys suffered significant embrittlement when tested in simulated body fluid. The susceptibility of the RS66 alloy to SCC was ~25% greater than that of AZ91, which is attributed to the greater resistance of AZ91 to corrosion/localised corrosion because of its Al content.
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快速凝固镁合金 RS66 的模拟体液辅助应力腐蚀裂纹
本研究调查了一种无铝镁合金(RS66)和一种常见的含铝镁合金(AZ91)的模拟体液辅助应力腐蚀开裂(SCC),前者更适合用于临时植入应用(不过,我们使用 AZ91 进行比较,因为关于该合金 SCC 的报道相当多)。调查包括在机械加载和施加电化学势的同时条件下进行的 SCC 测试,确定氢和阳极溶解的综合效应是脆化机理。尽管 RS66 合金在非腐蚀性环境中具有令人印象深刻的机械性能(这是其晶粒细小的结果),但在模拟体液中进行测试时,这两种合金都发生了明显的脆化。RS66 合金对 SCC 的易感性比 AZ91 高出约 25%,这是因为 AZ91 中的铝含量使其具有更强的抗腐蚀/局部腐蚀能力。
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