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Simulations of passivation phenomena based on discrete lattice gas automata

机译:基于离散晶格气体自动机的钝化现象模拟

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We present simulation results for a simple lattice gas cellular automata model of passivation. The lattice sites representing the corrosion product are produced at the corroding surface and diffuse executing a random walk. Asymmetric simple exclusion rules of the random walk account for an attractive potential between the corrosion product particles. The particles can aggregate and when sufficiently numerous form a compact phase on the corroding surface. The model predicts a transition from the active to passive state when increasing the reactivity of the surface. The transition is characterized by a sudden increase in the surface coverage of the corrosion product interpreted as a passive layer formation. The layer blocks contact of the metal surface with the environment and reduces the corrosion rate. The model reproduces the known paradox of passivity-the surface must be reactive enough for the layer to form. A further increase in the bare reactivity reduces largely the observed reaction rate. The simulations yield information on the morphological changes of the surface layer before and after the transition. In terms of the corrosion current, the active state is described by the current increase with the polarizing potential according to the Tafel law while in the passive state the current is independent of the anodic potential. Our simple model reproduces principal features of passivation.
机译:我们提出了一个简单的钝化晶格气孔自动机模型的仿真结果。代表腐蚀产物的晶格位点在腐蚀表面产生并扩散以执行随机游走。随机游走的不对称简单排除规则说明了腐蚀产物颗粒之间的吸引力。颗粒可以聚集并且当足够多时在腐蚀表面上形成致密相。当增加表面的反应性时,该模型预测从主动状态到被动状态的转变。该转变的特征在于被解释为钝化层形成的腐蚀产物的表面覆盖率突然增加。该层阻止金属表面与环境的接触并降低腐蚀速率。该模型再现了已知的钝性悖论-表面必须具有足够的反应性才能形成层。裸反应性的进一步增加大大降低了观察到的反应速率。该模拟产生关于过渡之前和之后表面层的形态变化的信息。就腐蚀电流而言,根据塔菲尔定律,有源状态由电流随极化电位的增加来描述,而在无源状态下,电流与阳极电位无关。我们的简单模型再现了钝化的主要特征。

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