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Electrochemical behavior of Zn-rich Zn-Cu peritectic alloys affected by macrosegregation and microstructural array

机译:宏观偏析和微观结构对富锌锌铜包晶合金的电化学行为

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The aim of this experimental investigation is to evaluate the electrochemical behavior of an as-cast Zn-rich Zn-Cu peritectic alloy as a function of both the solute macrosegregation profile and the microstructure cellular spacing. A directional solidification apparatus was used to obtain the as-cast samples. Electrochemical impedance spectroscopy (EIS), potentiodynamic polarization techniques and an equivalent circuit analysis were used to evaluate the corrosion resistance in a 0.5 M NaCl solution at 25℃. It was found that both copper content and cell spacing are significantly affected by the position along the casting length from the cooled bottom of the casting. These parameters play interdependent roles on the resulting corrosion behavior. Samples which are closer to the casting cooled surface are more affected by the solute inverse segregation, i.e. have a Cu content that is higher than the alloy nominal composition. This is shown to be a driving-force leading to a decrease in the corrosion resistance. However, for other samples with similar Cu content and close to the nominal alloy composition, the cell spacing seems to be the driving-force associated with the corrosion resistance and for these cases finer microstructures are shown to be related to higher corrosion resistance.
机译:该实验研究的目的是评估铸态富锌的Zn-Cu包晶合金的电化学行为,它是溶质宏观偏析轮廓和微结构孔间距的函数。使用定向凝固设备获得铸态样品。用电化学阻抗谱(EIS),电位动力学极化技术和等效电路分析来评估0.5 M NaCl溶液在25℃下的耐腐蚀性。发现从冷却的铸件底部沿铸件长度的位置对铜含量和晶胞间距都有显着影响。这些参数在产生的腐蚀行为上起相互依存的作用。更接近铸件冷却表面的样品受溶质逆偏析的影响更大,即,其铜含量高于合金的标称成分。已显示这是导致耐蚀性降低的驱动力。但是,对于其他具有相似的Cu含量并且接近标称合金成分的样品,晶胞间距似乎是与耐蚀性相关的驱动力,对于这些情况,更细的微观结构显示出与较高的耐蚀性有关。

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