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Influence of Process Parameters on the Mechanical Behavior of an Ultrafine-Grained Al Alloy

机译:工艺参数对超细晶粒铝合金力学行为的影响

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摘要

Aluminum alloys with nanocrystalline (NC) and ultrafine grain (UFG) size are of interest because of their strengths that are typically 30 pct greater than conventionally processed alloys of the same composition. In this study, UFG AA 5083 plate was prepared by quasi-isostatic (QI) forging of cryomilled powder, and the microstructure and mechanical behavior was investigated and compared with the behavior of coarse-grained AA 5083. Forging parameters were adjusted in an effort to strengthen the UFG material while retaining some tensile ductility. Different forging parameters were employed on three plates, with approximate dimensions of 254 mm diameter and 19 mm thickness. The overarching goal of the current effort was to increase strength through minimized grain growth during processing while maintaining ductility by breaking up prior particle boundaries (PPBs) with high forging pressures. Mechanical tests revealed that strength increased inversely with grain size, whereas ductility for some of the experimental materials was preserved at the level of the conventional alloy. The application of the Hall-Petch relationship to the materials was studied and is discussed in detail with consideration given to strengthening mechanisms other than grain size, including dispersion (Orowan), solid solution, and dislocation strengthening.
机译:具有纳米晶体(NC)和超细晶粒(UFG)尺寸的铝合金很受关注,因为它们的强度通常比相同成分的常规加工合金大30%。在这项研究中,UFG AA 5083板是通过冷冻研磨粉的准等静压(QI)锻造制备的,研究了显微组织和力学行为,并将其与粗晶粒AA 5083的行为进行了比较。调整了锻造参数以努力增强UFG材料,同时保持一定的拉伸延展性。在三块板上采用了不同的锻造参数,直径约为254毫米,厚度为19毫米。当前工作的总体目标是通过在加工过程中最小化晶粒长大来提高强度,同时通过在高锻压下破坏先前的颗粒边界(PPB)来保持延展性。机械测试表明,强度与晶粒尺寸成反比,而某些实验材料的延展性保持在常规合金水平。研究了霍尔-帕奇关系在材料上的应用,并考虑了除晶粒尺寸以外的其他强化机制,包括弥散(Orowan),固溶体和位错强化等,并进行了详细讨论。

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