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SIMS analysis of deuterium absorption and diffusion in austenitic Fe-Mn-C steels

机译:奥氏体Fe-Mn-C钢氘吸收和扩散的SIMS分析

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Austenitic Fe-Mn-C steels are Ultra High Strength Steels which may be used for the production of deep drawn automotive parts containing extremely high residual stress and strain levels. In consequence, hydrogen absorption occurring during the corrosion process in aqueous environments may enhance the sensitivity of these steels to different kinds of hydrogen-induced damage, in particular Stress Corrosion Cracking (SCC). In order to predict and prevent SCC, it is important to study the behaviour of hydrogen in these austenitic steels exposed to aqueous environments and in particular the dependence on the alloy chemistry and microstructure. SIMS profiles of deuterium introduced by cathodic charging in selected specimens were used to characterize the diffusion of hydrogen in these steels. This allowed to be studied the role of chemical composition and microstructure on the kinetics of H absorption at room temperature. The competition between bulk matrix diffusion and short-circuit diffusion phenomena along grain boundaries was investigated. The results show a strong dependence of H diffusion and distribution on the alloy chemistry and grain size.
机译:奥氏体Fe-Mn-C钢是超高强度钢,其可用于生产含有极高的残余应力和应变水平的深绘制的汽车部件。结果,在水性环境中腐蚀过程中发生的氢吸收可以提高这些钢对不同种类的氢诱导损伤的敏感性,特别是应力腐蚀裂解(SCC)。为了预测和预防SCC,重要的是研究暴露于水性环境的这些奥氏体钢中的氢的行为,特别是对合金化学和微观结构的依赖性。通过在选定的样本中通过阴极充电引入的氘的SIMS型材用于表征氢气在这些钢中的扩散。这使得化学成分和微观结构在室温下H吸收动力学中的作用。研究了沿着晶界沿晶界扩散和短路扩散现象之间的竞争。结果表明,H扩散和分布对合金化学和晶粒尺寸的强烈依赖。

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