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Novel approach using EIS to study flow accelerated pitting corrosion of AA5083-H321 aluminum–magnesium alloy in NaCl solution

机译:用EIS研究AA5083-H321铝镁合金在NaCl溶液中流动加速点蚀的新方法

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摘要

EIS was utilized as a novel approach to study the role of mechanical and electrochemical processes in flow accelerated pitting corrosion behaviour of AA5083-H321 aluminum–magnesium alloy in 3.5% NaCl solution. This alloy is a suitable material for manufacturing of high speed boats, submarines, desalination systems etc. Impedance spectra were obtained during 24 h of exposure of the samples to the test solution at different rotation speeds. The surface and cross section of the samples were studied by scanning electron microscopy (SEM) and EDAX analysis. The results indicated that increasing the rotation speed causes the depth of pits to increase. By further increasing the rotation speed to 5 and 7 m s−1, the flow condition causes the passive layer inside the pits to breakdown. Simultaneously, the thickness of the passive layer on the areas other than the pits becomes thinner. Shear stresses at 10 m s−1 are so severe that the passive layer on the entire surface breaks down and leads to micropitting corrosion.
机译:EIS被用作研究机械和电化学过程在AA5083-H321铝镁合金在3.5%NaCl溶液中的流动加速点蚀腐蚀行为中的作用的新颖方法。该合金是用于制造高速船,潜艇,海水淡化系统等的合适材料。在样品以不同转速暴露于测试溶液的24小时内,获得了阻抗谱。通过扫描电子显微镜(SEM)和EDAX分析研究样品的表面和横截面。结果表明,提高转速会导致凹坑深度增加。通过将转速进一步提高到5和7 m s -1 ,流动条件导致凹坑内部的钝化层击穿。同时,除凹坑以外的区域上的钝化层的厚度变薄。 10 m s -1 处的剪切应力是如此之强,以致整个表面的钝化层破裂并导致微点蚀。

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