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首页> 外文期刊>Transactions of the Indian Institute of Metals >Effect of Grain Refinement on Corrosion Rate, Mechanical and Machining Behavior of Friction Stir Processed ZE41 Mg Alloy
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Effect of Grain Refinement on Corrosion Rate, Mechanical and Machining Behavior of Friction Stir Processed ZE41 Mg Alloy

机译:晶粒细化对摩擦搅拌加工ZE41镁合金腐蚀速率,机械加工行为的影响

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摘要

The aim of the present work is to modify the microstructure of ZE41 Mg alloy by friction stir processing (FSP) and to study the influence of microstructure on the corrosion, mechanical and machining behavior. Microstructural observations revealed the prevalence of grain refinement from approximate to 100 to 3.5 mu m. The compound present at the grain boundary was observed to have decreased to a great extent after FSP suggesting the formation of supersaturated grains. Hardness measurements indicated increased hardness after FSP which was attributed to grain refinement effect. Tensile tests showed increased yield strength after FSP without altering the percentage of elongation which was due to the grain boundary strengthening. Corrosion performance of FSPed ZE41 was found to be similar compared with ZE41 due to the synergy of grain refinement, decreased amount of secondary phase and development of supersaturated grains. Grain size was observed as significant factor on machining characteristics as observed from improved machinability for FSPed ZE41 during drilling experiments. It was learnt from the current work that the grain-refined supersaturated ZE41 Mg alloy could be produced through FSP with better mechanical and machining behavior without deteriorating the corrosion performance.
机译:本作本作作品的目的是通过摩擦搅拌加工(FSP)来改变ZE41 mg合金的微观结构,并研究微观结构对腐蚀,机械加工行为的影响。微观结构观察揭示了从近似到100至3.5亩的晶粒细化的患病率。在FSP表明形成超饱和颗粒后,观察到存在于晶粒边界处的化合物在很大程度上降低。硬度测量结果表明,FSP后的硬度增加,归因于晶粒细化效果。在FSP之后,拉伸试验显示出屈服强度增加而不改变由于晶界强化而导致的伸长率。由于晶粒细化的协同作用,与ZE41相比,发现FSPED ZE41的腐蚀性与ZE41相似,减少了二次相和过饱和颗粒的发育。在钻井实验期间观察到从改善FSPED ZE41的改进的加工特性的加工特性的显着因素被观察到晶粒尺寸。从目前的工作中了解到,通过FSP通过FSP制造晶粒精制的过饱和ZE41mg合金,可以通过更好的机械和加工行为来生产,而不会降低腐蚀性。

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