The effect of zirconium grain refinement on the corrosion behaviour of magnesium-rare earth alloy MEZ

Guangling Song, David StJohn
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引用次数: 215

Abstract

Corrosion performance of sand cast magnesium alloy MEZ was investigated for unrefined (MEZU) and Zr-grain-refined (MEZR) microstructures in 5% NaCl solution using salt spray, immersion, in situ examination of the corrosion morphology, ESEM, electron probe microanalysis, hydrogen evolution and polarisation curves. MEZU demonstrated higher rates of anodic dissolution and cathodic hydrogen evolution than MEZR. The central zirconium-rich areas within the grains of the MEZR microstructure was more corrosion resistant than the outer zirconium-depleted areas of the grains, whereas MEZU showed little difference in corrosion between the centre and the edge of the grains. Based on the analyses of the corrosion process, polarisation behaviour and the microstructure of these two alloys, it is postulated that zirconium acts in a number of ways to improve corrosion resistance. Zirconium stabilises the solid solution and makes it inactive in anodic dissolution, significantly passivates the precipitated particles reducing cathodic hydrogen evolution and increases the barrier effect of the grain boundary phase through a finer grain size and thus a more continuous layer of the grain boundary phase.

锆晶粒细化对镁-稀土合金MEZ腐蚀行为的影响
采用盐雾、浸渍、腐蚀形貌原位检测、ESEM、电子探针显微分析、析氢和极化曲线等方法,研究了铸态镁合金MEZ在5%NaCl溶液中对未细化(MEZU)和Zr晶粒细化(MEZR)组织的腐蚀性能。MEZU表现出比MEZR更高的阳极溶解率和阴极析氢率。MEZR微观结构晶粒内的中心富锆区域比晶粒的外部贫锆区域更耐腐蚀,而MEZU在晶粒的中心和边缘之间的腐蚀差异很小。根据对这两种合金的腐蚀过程、极化行为和微观结构的分析,假设锆通过多种方式提高了耐腐蚀性。锆稳定了固溶体,使其在阳极溶解中失去活性,显著钝化了沉淀颗粒,减少了阴极析氢,并通过更细的晶粒尺寸增加了晶界相的阻挡效应,从而形成了更连续的晶界相层。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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