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The Plastic Deformation Mechanisms, Strength, and Fracture Behavior of a Precipitation Hardened Aluminum-Lithium-Zirconium Alloy

机译:沉淀硬化铝 - 锂 - 锆合金的塑性变形机构,强度和断裂行为

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An aluminum alloy containing 2.6wt. percent Li and 0.09wt. percent Zr exhibited a very low value in tensile ductility consistently prior to the peak-aged strength independent of thermal treatment. A transition was characterized by very low ductility in the slightly underaged condition up to the near peak-aged condition, then followed by a substantial increase in ductility with aging after the peak-aged treatment. In order to better understand the deformation and fracture, a scanning electron microscopy study of the fracture surfaces of Al-2.6wt. percent Li-0.09wt. percent Zr tensile samples solution heat treated and artificially aged was performed to relate the mechanical behavior to tnicrostructure in the precipitation hardened Al-Li alloy. SEM analysis of the surface features and fracture morphology of the alloy was performed to understand the mechanisms of fracture in relation to the ductile to brittle transition that resulted in the alloy from precipitation hardening. TEM analysis was also performed to characterize the deformation behavior, and revealed the distribution of precipitates (both Al_3Li (delta') and Al_3Zr-Al_3Li) in the microstructure at very high magnifications as well as the dislocation subgrain structure of the alloy at lower magnification. It was proposed from this study that the presence of delta' particles in the matrix promotes intense planar slip which was believed to be responsible for the ultra-low ductility prior to the peak-aged temper. Based on a detailed quantitative microscopy study, it was proposed that the increase in the ductility of the alloy after aging was a consequence of particle coarsening with aging and thus resulting in the Orowan process due to the transition from dislocation particle shearing to dislocation particle bypassing.
机译:含有2.6wt的铝合金。李百分比和0.09wt。 Zr百分比在峰值老化强度与热处理无关之前始终如一的拉伸延展性值。在近峰值老化条件下的略微未发生的状态下的延展性非常低的转变的特征在于,然后在峰值老化处理后随着衰老的延展性大幅增加。为了更好地理解变形和骨折,扫描电子显微镜研究Al-2.6wt的裂缝表面。 Li-0.09wt%。进行Zr拉伸样品溶液热处理和人工老化的溶液,以使沉淀硬化的Al-Li合金中TnicroS结构的机械行为。对合金的表面特征和裂缝形态进行SEM分析,以了解骨折与脆性转变的裂缝机制,从而导致沉淀硬化的合金。还进行了TEM分析以表征变形行为,并揭示了在非常高的放大率下的微结构中的沉淀物(Al_3Li(Delta')和Al_3Zr-Al_3Li的分布以及在较低倍率下的合金的位错粒子结构。从该研究中提出的是,δ在基质中的颗粒的存在促进强烈的平面滑移,其被认为在峰值老化后的超低延展性负责。基于一种详细的定量显微镜研究,提出了老化后合金的延展性的增加是粒子粗糙化的结果,从而导致Orowan工艺由于从位错颗粒剪切到位错颗粒旁路而导致orowan过程。

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