We present a theoretical and numerical scheme that enables quantifying hydrogen ingress in metals for arbitrary environments and defect geometries. This is achieved by explicitly resolving the electrochemical behaviour of the electrolyte, the hydrogen and corrosion reactions, the kinetics of surface adsorption, and hydrogen uptake, diffusion and trapping in mechanically-deforming solids. This new framework is used to produce maps that relate the absorbed hydrogen with the applied potential, specimen geometry and fluid velocity. We also present simplified versions of our generalised model, and benchmark predictions of these and other existing models against the generalised electro-chemo-mechanical results, establishing regimes of validity.
翻译:我们提出了一个理论和数字计划,可以将金属中的氢侵入量化为任意的环境和缺陷的几何,通过明确解决电解物、氢和腐蚀反应、表面吸附的动能、氢吸收、扩散和在机械变形固体中捕捉氢的电化学行为,这个新框架用来绘制吸收氢与应用潜力、样本几何和流体速度有关的地图,我们还提供了我们通用模型的简化版本,并根据一般电化学机械结果对这些模型和其他现有模型进行基准预测,建立有效性制度。