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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Rheological behaviour of partially solidified A356 alloy: Experimental study and constitutive modelling
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Rheological behaviour of partially solidified A356 alloy: Experimental study and constitutive modelling

机译:部分凝固A356合金的流变行为:实验研究与本构型建模

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Rheological behaviour of the mushy zone is dependent on the microstructure and related to parameters such as temperature, shear rate and shear strain/time. However, constitutive modelling of the rheological behaviour is difficult due to the diversity of the parameters. This study focuses on the influence of the microstructure and the above parameters on the rheological behaviour of partially solidified A356 alloy and establishing a constitutive model accordingly. During solidification, the evolution of alpha-Al phase leads to the changes of the apparent viscosity of mushy zone. Steady-state viscosity and peak viscosity measured by rotational rheometry reveal the thixotropy of the mushy zone. The thixotropic strength is found to increase with increasing shear rate and decreasing temperature. The peak viscosity, as well as the steady-state viscosity, is found to obey a power law model and is modelled using the power law model with the coupling of temperature and shear rate. Furthermore, a constitutive model with temperature, shear rate, shear tress and shear strain/time as parameters which describes the rheological behaviour of the mushy zone of partially solidified A356 alloy accurately and completely is established. Comparing with previously reported experimental results, the FEM simulation employing the constitutive model works well in enabling visualization of the viscoelastic filling process of A356 alloy in mushy zone. The constitutive model provides a solution for characterizing the forming behaviour of other mushy zone/semi-solid aluminium alloys with corresponding rheological parameters. (C) 2019 Elsevier B.V. All rights reserved.
机译:糊状区的流变行为依赖于微观结构并与温度,剪切速率和剪切应变/时间的参数相关。然而,由于参数的多样性,因此难以实现流变行为的本构模拟。该研究侧重于微观结构的影响和上述参数对部分固化的A356合金的流变行为,并相应地建立组成型模型。在凝固过程中,α-Al相的演变导致糊状区表观粘度的变化。通过旋转流变测量测量的稳态粘度和峰值粘度揭示了糊状区的触变性。发现触变强度随着剪切速率的增加和温度降低而增加。发现峰值粘度以及稳态粘度遵守动力法模型,并使用电力法模型进行建模,耦合温度和剪切速率。此外,建立了具有温度,剪切速率,剪切和剪切应变/时间的本构体型模型,作为准确且完全地建立了部分固化的A356合金的糊状区的流变行为的参数。与先前报道的实验结果相比,采用本构模型的有限元模拟效果良好地效果效果效果良好,可视化糊状区A356合金粘弹性填充过程。本构模型提供了表征其他糊状区/半固体铝合金具有相应流变参数的形成行为的解决方案。 (c)2019 Elsevier B.v.保留所有权利。

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