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Numerical Investigation of Micro-Galvanic Corrosion in Mg Alloys: Role of the Cathodic Intermetallic Phase Size and Spatial Distributions

机译:镁合金微电偶腐蚀的数值研究:阴极金属间相尺寸和空间分布的作用

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Magnesium alloys are of increasing interest in structural applications due to their low-density, moderate specific strength and stiffness, recyclability, and high damping among other properties. However, the wide-scale applicability of magnesium alloys in structural applications has been limited due to many factors including its poor corrosion resistance. In this work, a numerical investigation to simulate the micro-galvanic corrosion behavior was performed to examine the influence of the size and distribution of cathodic intermetallic phase (β-Mg_(17)Al_(12)) in a Mg matrix. The ratio of cathodic to anodic surface area was kept constant in each simulation condition to understand the effect of size and spacing distributions. In general, fragmentation of a larger intermetallic particle into smaller ones was determined to enhance the localized current density. However, the uniform distribution rather than clustered or non-uniform distribution of this small intermetallic phase throughout the matrix was found to reduce the overall dissolution current density and hence, pitting corrosion severity.
机译:镁合金由于其低密度、中等比强度和刚度、可回收性和高阻尼等特性,在结构应用中受到越来越多的关注。然而,由于镁合金耐蚀性差等诸多因素,其在结构应用中的广泛适用性受到限制。在这项工作中,通过数值研究来模拟微电偶腐蚀行为,以检验镁基体中阴极金属间相(β-Mg_17)Al_12)的大小和分布的影响。在每个模拟条件下,阴极与阳极的表面积之比保持不变,以了解尺寸和间距分布的影响。一般来说,较大的金属间化合物颗粒破碎成较小的颗粒,以提高局部电流密度。然而,发现这种小金属间相在整个基体中的均匀分布,而不是聚集或不均匀分布,降低了整体溶解电流密度,从而降低了点蚀严重程度。

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