材料科学
溶解
晶界
合金
腐蚀
冶金
晶间腐蚀
应力腐蚀开裂
阳极
降水
化学工程
微观结构
电极
化学
物理
物理化学
气象学
工程类
作者
Pan Tan,Zhengqing Liu,Jin Qin,Qirong Wei,Bin Wang,Danqing Yi
标识
DOI:10.1016/j.matchar.2023.113615
摘要
The effect of Zn contents on grain boundary precipitates (GBPs), intergranular corrosion (IGC), and stress corrosion cracking (SCC) of crossover Al–Cu–Zn–Mg alloys was investigated. The increase in Zn contents accelerates the age-hardening response, and both matrix precipitates (MPs) and GBPs are transformed from S phase to S and η phases, while the width of the precipitates free zones (PFZs) first increases and then decreases. The narrowed PFZ width, coarse and discontinuous GBPs were able to inhibit anodic dissolution resulting in enhanced IGC resistance. The η phase inhibits anodic dissolution leading to an enhanced IGC resistance. First-principles calculations demonstrate that the GBPs surface with Mg termination planes shows a lower work function than that of Al leading to preferential anodic dissolution. The evolution of GBPs and PFZ widths changes the mechanism of SCC susceptibility for different Zn contents alloys from anodic dissolution and hydrogen embrittlement to anodic dissolution.
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