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Microstructure and electrochemical corrosion behavior of a Pb-1 wt%Sn alloy for lead-acid battery components

机译:铅酸电池组件用Pb-1 wt%Sn合金的组织和电化学腐蚀行为

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The aim of this study was to evaluate the effect of solidification cooling rates on the as-cast microstructural morphologies of a Pb-1 wt%Sn alloy, and to correlate the resulting microstructure with the corresponding electrochemical corrosion resistance in a 0.5 M H_2SO_4 solution at 25℃. Cylindrical low-carbon steel and insulating molds were employed permitting the two extremes of a significant range of solidification cooling rates to be experimentally examined. Electrochemical impedance spectroscopy (E1S) diagrams, potentiodynamic polarization curves and an equivalent circuit analysis were used to evaluate the electrochemical corrosion response of Pb-1 wt%Sn alloy samples. It was found that lower cooling rates are associated with coarse cellular arrays which result in better corrosion resistance than fine cells which are related to high cooling rates. The experimental results have shown that that the pre-programming of microstructure cell size of Pb-Sn alloys can be used as an alternative way to produce as-cast components of lead-acid batteries with higher corrosion resistance.
机译:这项研究的目的是评估凝固冷却速率对Pb-1 wt%Sn合金铸态微观组织形态的影响,并将所得的微观结构与相应的0.5 M H_2SO_4溶液中的耐电化学腐蚀性能相关联。 25℃。采用圆柱形低碳钢和绝缘模具,可以通过实验检查凝固冷却速率的两个极端。电化学阻抗谱图(E1S),电势极化曲线和等效电路分析用于评估Pb-1 wt%Sn合金样品的电化学腐蚀响应。已经发现,较低的冷却速率与粗孔阵列有关,与细孔相比,粗孔阵列具有更好的耐腐蚀性,细孔与高冷却速率有关。实验结果表明,Pb-Sn合金微结构单元尺寸的预编程可以用作生产具有较高耐腐蚀性的铅酸电池铸态组件的替代方法。

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