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Rheological Behavior of Al-Cu Alloys during Solidification: Constitutive Modeling, Experimental Identification, and Numerical Study

机译:凝固过程中Al-Cu合金的流变行为:本构模型,实验鉴定和数值研究

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摘要

The rheological behavior of a solidifying alloy is modeled by considering the deforming material as a viscoplastic porous medium saturated with liquid. Since the solid grains in the mush do not form a fully cohesive skeleton, an internal variable that represents the partial cohesion of this porous material is introduced. The model parameters are identified using shear and compressive stress states under isothermal conditions on an Al-Cu model alloy. The model is partially validated with non-isothermal conditions and we complete this study with tensile conditions. Such conditions, when applied on the mush, may lead to severe defects in many casting processes. The model has been implemented into a commercial finite-element code to simulate a tensile test. Comparison with experimental data shows that the model is able to reproduce the main features of a solidifying alloy under tension, although fracture is not directly addressed here. We show that two critical solid fractions must be introduced in the model to account for the rheology: the coherency solid fraction at which the mush acquires significant strength and the coalescence solid fraction at which solid grains start to form solid bridges.
机译:通过将变形材料视为被液体饱和的粘塑性多孔介质来模拟凝固合金的流变行为。由于糊状物中的固体颗粒不形成完全粘结的骨架,因此引入表示该多孔材料的部分粘结的内部变量。在Al-Cu模型合金上,使用等温条件下的剪切应力和压缩应力状态来确定模型参数。该模型在非等温条件下得到了部分验证,我们在拉伸条件下完成了该研究。当将这些条件应用于糊状物时,可能在许多铸造工艺中导致严重的缺陷。该模型已实现为商业有限元代码,以模拟拉伸测试。与实验数据的比较表明,该模型能够重现拉伸状态下凝固合金的主要特征,尽管此处并未直接解决断裂问题。我们表明,必须在模型中引入两个关键的固体成分来说明流变学:糊状物获得显着强度的相干固体成分和固体颗粒开始形成固体桥的聚结固体成分。

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