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DEVELOPMENT OF NANO-STRUCTURED 1200 AND 3103 ALUMINUM ALLOYS BY EQUAL CHANNEL ANGULAR PRESSING

机译:等通道角压力对纳米结构1200和3103铝合金的开发

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Equal Channel Angular Extrusion (ECAE) has been used to produce sub-mieron-size grain structures in two aluminium alloys (AA1200 and AA31303). The ECAE was attempted at room temperature and following the so-called route C. The process via route C involves a 180° angular rotation in between each pass and it strongly affects the material microstructure by reversing the shear strain every second pass. This particular and unique characteristic of the route C induced a limited build-up of significant numbers of new high angle boundaries, at least for the first three passes, which the present proposed paper has been focused to. 3 passes by route C throughout the ECAE die were sufficient to produce a very fine structured material for both 1200 and 3103 alloys. High resolution EBSP analysis has been carried out to measure the boundary misorientation within the deformed structures. Yet, the sub-grain and grain spacing has been measured revealing a faster refining effect on the 3103 alloy respect to the 1200 ones.
机译:等通道角挤压(ECAE)已用于生产两种铝合金(AA1200和AA31303)的亚微米级晶粒结构。 ECAE在室温下并按照所谓的路径C进行尝试。通过路径C的过程涉及在每次通过之间进行180°角旋转,并且通过每第二次通过使剪切应变反向而强烈影响材料的微观结构。路线C的这种特殊和独特的特性至少在前三遍中引起了有限数量的大量新高角度边界的建立,这是本文提出的重点。在整个ECAE模具中,通过路径C进行的3次通过足以产生用于1200和3103合金的非常精细的结构化材料。已经进行了高分辨率的EBSP分析,以测量变形结构内的边界取向错误。然而,已测量了亚晶粒和晶粒间距,揭示了对3103合金比1200更快的细化效果。

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