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Al-Zn-Mg-Cu合金非等温时效过程中的微观结构演变及其对局部腐蚀的影响

Microstructure Evolution and the Resulted Influence on Localized Corrosion in Al-Zn-Mg-Cu Alloy during Non-Isothermal Ageing.

作者信息

Chen Jun-Zhou, Li Guo-Ai, Cai Xin, Jiang Jian-Tang, Shao Wen-Zhu, Yang Li, Zhen Liang

机构信息

Beijing Institute of Aeronautical Materials, Beijing 100095, China.

Beijing Engineering Research Center of Advanced Aluminum Alloys and Application, Beijing 100095, China.

出版信息

Materials (Basel). 2018 May 3;11(5):720. doi: 10.3390/ma11050720.

Abstract

A non-isothermal ageing process was proposed for an Al-Zn-Mg-Cu alloy aiming to accommodate the slow heating/cooling procedure during the ageing of large components. The evolution of microstructure and microchemistry was analyzed by using transmission electron microscopy, high-angle annular dark field imaging, and energy dispersive spectrometry. The age-hardening of the alloy was examined to evaluate the strengthening behavior during the non-isothermal process. The corrosion behavior was investigated via observing the specimens immersed in EXCO solution (solution for Exfoliation Corrosion Susceptibility test in 2xxx and 7xxx series aluminum alloys, referring ASTM G34-01). Secondary precipitation was observed during the cooling stage, leading to increased precipitate number density. The distribution of grain boundary precipitates transits from discontinuous to continuous at the cooling stage, due to the secondary precipitation’s linking-up effect. The solutes’ enrichment on grain boundary precipitates and the depletion in precipitate-free zones develops during the heating procedure, but remains invariable during the cooling procedure. The corrosion in NIA (Non-isothermal Ageing) treated specimens initiates from pitting and then transits to intergranular corrosion and exfoliation corrosion. The transition from pitting to intergranular corrosion is very slow for specimens heated to 190 °C, but accelerates slightly as the cooling procedure proceeds. The transition to exfoliation corrosion is observed to be quite slow in all specimens in non-isothermal aged to over-aged condition, suggesting a corrosion resistance comparable to that of RRA condition.

摘要

针对一种Al-Zn-Mg-Cu合金提出了一种非等温时效工艺,旨在适应大型部件时效过程中的缓慢加热/冷却程序。通过透射电子显微镜、高角度环形暗场成像和能谱分析对微观结构和微化学的演变进行了分析。对合金的时效硬化进行了研究,以评估非等温过程中的强化行为。通过观察浸泡在EXCO溶液(2xxx和7xxx系列铝合金剥落腐蚀敏感性试验溶液,参考ASTM G34-01)中的试样来研究腐蚀行为。在冷却阶段观察到二次析出,导致析出相数量密度增加。由于二次析出的连接效应,晶界析出相的分布在冷却阶段从间断转变为连续。溶质在加热过程中在晶界析出相上富集而在无析出相区贫化,但在冷却过程中保持不变。非等温时效(NIA)处理的试样的腐蚀从点蚀开始,然后转变为晶间腐蚀和剥落腐蚀。对于加热到190℃的试样,从点蚀到晶间腐蚀的转变非常缓慢,但随着冷却过程的进行略有加速。在非等温时效至过时效状态的所有试样中,观察到向剥落腐蚀的转变相当缓慢,这表明其耐腐蚀性与RRA状态相当。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0f67/5978097/330636932e70/materials-11-00720-g001.jpg

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