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Microstructure and Quasi-Static Mechanical Behavior of Cryoforged AA2519 Alloy

机译:超冷AA2519合金的显微组织和准静态力学行为

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In this study, AA2519 alloy was initially processed by multi axial forging (MAF) at room and cryogenic temperatures. Subsequently, the microstructure and the mechanical behavior of the processed samples under quasi-static loading were investigated to determine the influence of cryogenic forging on alloys’ subgrains dimensions, grain boundaries interactions, strength, ductility and toughness. In addition, the failure mechanisms at the tensile rupture surfaces were characterized using scanning electron micro-scope (SEM). The results show significant improvements in the strength, ductility and toughness of the alloy as a result of the cryogenic MAF process. The formation of nanoscale crystallite microstructure, heavily deformed grains with high density of grain boundaries and second phase breakage to finer particles were characterized as the main reasons for the increase in the mechanical properties of the cryogenic forged samples. The cryogenic processing of the alloy resulted in the formation of an ultrafine grained material with tensile strength and toughness that are ~41% and ~80% higher respectively after 2 cycles MAF when compared with the materials processed at ambient temperature. The fractography analysis on the tested materials shows a substantial ductility improvement in the cryoforged (CF) samples when compared to the room temperature forged (RTF) samples which is in alignment with their stress-strain profiles. However, extended forging at higher cycles than 2 cycles led only to increase in strength at the expense of ductility for both the CF and RTF samples.
机译:在这项研究中,AA2519合金最初是在室温和低温下通过多轴锻造(MAF)加工的。随后,研究了在准静态载荷下加工的样品的微观结构和力学行为,以确定低温锻造对合金亚晶尺寸,晶界相互作用,强度,延展性和韧性的影响。另外,使用扫描电子显微镜(SEM)表征了拉伸断裂表面处的破坏机理。结果表明,低温MAF工艺可显着改善合金的强度,延展性和韧性。纳米级微晶结构的形成,具有高晶界密度的严重变形晶粒和第二相破碎为更细的颗粒,被表征为低温锻造样品力学性能提高的主要原因。合金的低温加工导致形成超细晶粒材料,与在室温下加工的材料相比,抗拉强度和韧性在2个MAF周期后分别提高了〜41%和〜80%。与室温锻造(RTF)样品相比,经测试材料的分形分析表明,低温成型(CF)样品的塑性显着提高,这与它们的应力-应变曲线一致。但是,在比2个循环更高的循环中进行扩展锻造只会导致强度的增加,但同时会降低CF和RTF样品的延展性。

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