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  • 涂浩, 魏大圣, 周圣潔, 劉亞, 吳長軍, 蘇旭平, 王建華. 冷卻速度對Zn—5Al—0.1RE—xSi合金顯微組織及耐蝕性能的影響[J]. 工程科學學報, 2016, 38(8): 1132-1138. DOI: 10.13374/j.issn2095-9389.2016.08.012
    引用本文: 涂浩, 魏大圣, 周圣潔, 劉亞, 吳長軍, 蘇旭平, 王建華. 冷卻速度對Zn—5Al—0.1RE—xSi合金顯微組織及耐蝕性能的影響[J]. 工程科學學報, 2016, 38(8): 1132-1138. DOI: 10.13374/j.issn2095-9389.2016.08.012
    TU Hao, WEI Da-sheng, ZHOU Sheng-jie, LIU Ya, WU Zhang-jun, SU Xu-ping, WANG Jian-hua. Effect of cooling rate on the microstructure and corrosion properties of Zn-5Al-0.1RE-xSi alloys[J]. Chinese Journal of Engineering, 2016, 38(8): 1132-1138. DOI: 10.13374/j.issn2095-9389.2016.08.012
    Citation: TU Hao, WEI Da-sheng, ZHOU Sheng-jie, LIU Ya, WU Zhang-jun, SU Xu-ping, WANG Jian-hua. Effect of cooling rate on the microstructure and corrosion properties of Zn-5Al-0.1RE-xSi alloys[J]. Chinese Journal of Engineering, 2016, 38(8): 1132-1138. DOI: 10.13374/j.issn2095-9389.2016.08.012

    冷卻速度對Zn—5Al—0.1RE—xSi合金顯微組織及耐蝕性能的影響

    Effect of cooling rate on the microstructure and corrosion properties of Zn-5Al-0.1RE-xSi alloys

    • 摘要: 運用掃描電子顯微鏡/能譜儀、X射線衍射、鹽霧實驗、電極化曲線等手段,研究冷卻速度和Si對Zn-5Al-0.1RE合金組織及耐蝕性能的影響.結果表明,Zn-5Al-0.1RE-xSi合金由先析出的η-Zn和η-Zn+α-Al共晶組織組成,前者均勻分布在相鄰的η-Zn+α-Al共晶胞的邊界上.降低冷卻速度和Si的加入,均使Zn-5Al-0.1RE-xSi合金單位面積的晶粒增大,晶界減少,合金耐蝕性能提高.Zn-5Al-0.1RE-xSi合金耐蝕性能的差異與合金凝固組織及合金腐蝕產物中Zn5(OH)8Cl2·H2O和ZnO的相對量有關.

       

      Abstract: The effects of cooling rate and Si on the microstructure and corrosion property of the Zn-5Al-0.1 RE alloy were studied by scanning electron microscopy-energy dispersive spectrometry, X-ray diffraction, neutral salt spray test and polarization curves. The results show that Zn-5Al-0.1RE-xSi alloys are composed of primary η-Zn phase and η-Zn + α-Al eutectic structure, and the former is uniformly distributed on the adjacent η-Zn + α-Al entectic cells. The reduction of cooling rate and the addition of Si make the grain size increase and the boundary area per unit alloy area decrease; at the same time, the corrosion resistance is improved. The corrosion resistance of the Zn-5Al-0.1 RE-xSi alloys is dependent on their solidification structure and the relative amount of corrosion products including Zn5(OH)8Cl2·H20 and ZnO.

       

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