Effect of Microstructure on Corrosion Behavior of Cold Sprayed Aluminum Alloy 5083

Munsu Kim, L. Perez-Andrade, Luke N. Brewer, G. Kubacki
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Abstract

This paper investigates the effect of the microstructure on the corrosion behavior of cold sprayed (CS) AA5083 compared to its wrought counterpart. It has been shown that the microstructure of CS aluminum alloys, such as AA2024, AA6061, and AA7075, affects their corrosion behavior; however, investigations of the corrosion behavior of CS AA5083 with a direct comparison to wrought AA5083 have been limited. The microstructure and corrosion behavior of CS AA5083 were examined by scanning electron microscopy (SEM), transmission electron microscopy (TEM), energy dispersive X-ray spectroscopy (EDS), electron backscattered diffraction (EBSD), electrochemical and immersion tests, and ASTM G67. The CS process resulted in microstructural changes, such as the size and spatial distribution of intermetallic particles, grain size, and misorientation. The refined grain size and intermetallic particles along prior particle boundaries stimulated the initiation and propagation of localized corrosion. Electrochemical tests presented enhanced anodic kinetics with high pitting susceptibility, giving rise to extensive localized corrosion in CS AA5083. The ASTM G67 test demonstrated significantly higher mass loss for CS AA5083 compared to its wrought counterpart due to preferential attack within prior particle boundary regions in the CS microstructure. Possible mechanisms of intergranular corrosion (IGC) propagation at prior particle boundary regions have been discussed.
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微观结构对冷喷铝合金 5083 腐蚀行为的影响
与锻造铝合金相比,本文研究了微观结构对冷喷(CS)AA5083 腐蚀行为的影响。已有研究表明,CS 铝合金(如 AA2024、AA6061 和 AA7075)的微观结构会影响其腐蚀行为;然而,将 CS AA5083 的腐蚀行为与锻造 AA5083 进行直接比较的研究还很有限。本文采用扫描电子显微镜 (SEM)、透射电子显微镜 (TEM)、能量色散 X 射线光谱 (EDS)、电子反向散射衍射 (EBSD)、电化学和浸泡试验以及 ASTM G67 等方法对 CS AA5083 的微观结构和腐蚀行为进行了研究。希尔思工艺导致了微观结构的变化,如金属间颗粒的尺寸和空间分布、晶粒尺寸和错位。细化的晶粒尺寸和金属间颗粒沿先前的颗粒边界分布,刺激了局部腐蚀的发生和扩展。电化学测试表明,阳极动力学增强,点蚀敏感性高,导致 CS AA5083 出现大面积局部腐蚀。ASTM G67 测试表明,与锻造的同类产品相比,CS AA5083 的质量损失要高得多,这是因为 CS 微结构中的先行颗粒边界区域受到了优先侵蚀。本文讨论了晶间腐蚀 (IGC) 在先前颗粒边界区域传播的可能机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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