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Microstructurai Design of an AlMgSi Alloy via ECAP Processing: an Advanced SPD Manufacturing Technique for NC/UFG Materials

机译:通过ECAP处理的Almgsi合金微观结构设计:NC / UFG材料的先进SPD制造技术

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Severe plastic deformation (SPD) has received enormous interest over the last two decades as a method capable of producing fully dense and bulk ultra-fine grained (UFG) and nanocrystalline (NC) materials. Significant grain refinement obtained by SPD leads to improvement of mechanical, microstructural and physical properties. Compared to classical deformation processes, the big advantage of SPD manufacturing techniques, represented in particular by equal channel angular pressing (ECAP) is the lack of shape-change deformation and the consequent possibility to impart extremely large strain. In ECAP processing, the workpiece is pressed through a die in which two channels of equal cross-section intersect at an angle of Φ and an additional angle of ψ define the arc of curvature at the outer point of intersection of the two channels. As a result of pressing, the sample theoretically deforms by simple shear and retains the same cross-sectional area to allow repeated pressings for several cycles. A commercial AlMgSi alloy was investigated in our study. The specimens were processed at room temperature for multiple passes, using three different ECAP dies. All samples (ECAP processed and as-received) were subjected to metallographic analysis and mechanical testing. Several correlations between the main processing parameters and the resulting microstructural aspect and mechanical features for the processed material were established. It was shown that severe plastic deformation by means of ECAP processing can be used in aluminum alloys microstructural design as an advanced tool for grain refinement in order to attain the desired microstructure and mechanical properties.
机译:严重的塑性变形(SPD)在过去二十年中得到了巨大的兴趣作为能够产生全致密的和散装超细晶粒(UFG)和纳米晶(NC)材料的方法。 SPD获得的显着晶粒细化导致改善机械,微观结构和物理性质。与经典变形过程相比,SPD制造技术的大优点,特别是通过等于沟道角压(ECAP)表示的是缺乏形状变形变形以及赋予极大的菌株的随后可能性。在ECAP处理中,工件通过模具压制,其中两个相同的横截面的通道以φ的角度相交,并且额外的角度ψ在两个通道的外部点处限定曲率的弧形。作为压制的结果,样品通过简单的剪切理论地变形并保持相同的横截面积以允许重复压力用于几个循环。在我们的研究中调查了一种商业Almgsi合金。使用三种不同的Ecap模具,在室温下在室温下加工样品。对所有样品(ECAP加工和接收)进行金相分析和机械测试。建立了主要处理参数与所得的微结构方面与加工材料的机械特征之间的几个相关性。结果表明,通过ECAP处理的严重塑性变形可用于铝合金微观结构设计作为晶粒细化的先进工具,以获得所需的微观结构和机械性能。

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