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Effect of pH value and preparation temperature on the formation of magnesium phosphate conversion coatings on AZ31 magnesium alloy

机译:pH值和制备温度对AZ31镁合金磷酸镁转化膜形成的影响

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Magnesium phosphate (Mg-P) conversion coatings were prepared on AZ31 magnesium (Mg) alloy to improve its corrosion resistance. The effect of pH value (2.5, 3.0, 3.5 and 4.0) and preparation temperature (40 degrees C, 60 degrees C and 80 degrees C) on the formation of conversion coatings was investigated in this study. The formation mechanism of Mg-P conversion coating is first proposed and investigated by predominance area diagram of Mg phosphates. The morphologies, compositions and cross-section morphologies of coated samples were analyzed by scanning-electron microscopy (SEM), energy-dispersive spectrometry (EDS), X-ray photoelectron spectroscopy (XPS) and X-ray diffractometry (XRD). Electrochemical impedance spectroscopy (EIS) and potentiodynamic polarization (PDP) measurements were conducted to evaluate the short-term corrosion resistance of coated samples in Hanks' solution at 37 degrees C and pH 7.4. In addition, a 5-day immersion test was carried out to evaluate their long-term corrosion resistance. It was found that temperature affected the corrosion performance of coated samples more significantly than pH value, and the coating formed at 80 degrees C-pH 3.0 offered the best corrosion resistance in Hanks' solution at 37 degrees C and pH 7.4. The formation mechanism of Mg-P coating was elucidated with reference to the pH value and Mg2+ ion concentration at different regions in the conversion solution according to the predominance area of magnesium phosphates. The microstructure of conversion coating suggests that it consisted of a precipitated outer layer and an in-situ grown inner layer. Compared with the crystallized outer layer, the dense inner layer contributed more to the corrosion resistance of the coated samples in Hanks' solution. Moreover, the corrosion mechanism of different samples including bare AZ31 Mg alloy and coated samples was discussed.
机译:在AZ31镁(Mg)合金上制备了磷酸镁(Mg-P)转化膜,以提高其耐腐蚀性。研究了pH值(2.5、3.0、3.5和4.0)和制备温度(40℃,60℃和80℃)对转化膜形成的影响。首先提出了Mg-P转化膜的形成机理,并通过磷酸镁的主要面积图对其进行了研究。通过扫描电子显微镜(SEM),能量色散光谱(EDS),X射线光电子能谱(XPS)和X射线衍射法(XRD)分析了涂层样品的形貌,组成和横截面形貌。进行了电化学阻抗谱(EIS)和电势极化(PDP)测量,以评估Hanks溶液在37摄氏度和pH 7.4下涂层样品的短期耐腐蚀性。另外,进行了5天的浸没测试以评估它们的长期耐腐蚀性。发现温度对涂层样品的腐蚀性能的影响远大于pH值,并且在80摄氏度-pH 3.0的条件下形成的涂层在汉克斯溶液中于37摄氏度和pH 7.4的条件下具有最佳的耐腐蚀性。根据磷酸镁的主要面积,结合转化溶液中不同区域的pH值和Mg2 +离子浓度,阐明了Mg-P涂层的形成机理。转化涂层的微观结构表明,它由沉淀的外层和原位生长的内层组成。与结晶的外层相比,致密的内层对汉克斯溶液中涂层样品的耐蚀性贡献更大。此外,还讨论了包括AZ31裸镁合金和涂层样品在内的不同样品的腐蚀机理。

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