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7A52鋁合金基體不同含量石墨烯復合涂層的制備及電化學噪聲特征分析

Preparation and electrochemical noise characteristics of graphene-composite coating with different contents of 7A52 aluminum alloy matrix

  • 摘要: 將傳統涂料與改性石墨烯復合,在7A52鋁合金基體上制備防腐性能優良的石墨烯復合涂層.采用電化學噪聲技術監測石墨烯改性涂層在質量分數為3.5%的NaCl溶液中的初期腐蝕過程.通過電化學噪聲的時域分析、時域統計分析、傅里葉變換、頻域分析,對不同石墨烯含量復合涂層的腐蝕過程進行研究,確定石墨烯具有最佳防腐蝕性能含量,根據電化學噪聲特征參數的變化對涂層腐蝕情況進行具體研究.結果表明:添加不同含量的改性石墨烯,涂層在一定時間內出現不同程度的電化學噪聲;當石墨烯涂層發生腐蝕時,電流電位變化過程為:波動范圍由小變大→兩者同步波動→電位緩升急降→兩者波動范圍再次變小.涂層交流阻抗在高頻區的阻抗值隨改性石墨烯含量的增加而增加;涂層添加改性石墨烯后,涂層腐蝕電位明顯正移,自腐蝕電流密度減小,涂層的耐腐蝕性能明顯提高;不同石墨烯含量涂層在3.5% NaCl溶液浸泡后鋁合金表面出現不同程度點蝕,質量分數1%的石墨烯涂層僅出現少量點蝕坑;結合交流阻抗、極化曲線結果以及鋁合金表面腐蝕形貌,綜合分析確定石墨烯質量分數為1%時涂層防腐蝕性能最佳.

     

    Abstract: In the harsh marine environment, the traditional aluminum alloy coating has difficulty meeting the requirements of use, which can affect equipment performance. The traditional coating and a modified graphene composite were prepared with a base of 7A52 aluminum alloy, which has excellent anticorrosive properties. Then, the electrochemical noise was recorded to monitor the initial corrosion process of the modified graphene coating in 3.5% NaCl solution. By time-domain, statistical time-domain, Fourier transform, and frequency-domain analyses, the corrosion process was studied in coatings with different graphene-composite contents. Based on the change in the electrochemical noise parameters of the coating corrosion conditions, the graphene content that exhibited the best anti-corrosion performance was determined. The results reveal that for different levels of modified graphene, the electrochemical noise of the coatings differs at certain times. When the graphene coating is corroded, the current potential change process experiences a fluctuation range from small to large and the fluctuation range decreases. It is found that the AC impedance of the coating in the high-frequency region increases with increased modified graphene content. After adding modified graphene to the coating, the corrosion potential of the coating shifts significantly, the corrosion current density decreases, and the corrosion resistance of the coating is significantly increased. After immersion in 3.5% NaCl solution, pits of various severities appear on the aluminum alloy surface, whereas only a small number of pits appear on a 1% graphene coating. By combining the AC impedance results, the polarization curves, and the corrosion morphology of the aluminum alloy surface, the best coating corrosion resistance was observed to occur when the graphene content was 1%.

     

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