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首页> 外文期刊>SIAM journal on applied dynamical systems >Application of the Digital Material Representation to strain localization prediction in the two phase titanium alloys for aerospace applications
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Application of the Digital Material Representation to strain localization prediction in the two phase titanium alloys for aerospace applications

机译:数字材料表示在航空航天应用中两相钛合金中的应变定位预测

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In the present work Digital Material Representation (DMR) approach was utilized to simulate the deformation behavior of the two phase Ti-6Al-4V alloy. DMR models of the two phase structure, containing different morphologies of alpha grains within a beta matrix lamellar and equiaxed, were created. Each phase was then separated and different mechanical properties were assigned. Subsequently, their response to loading was tested using simple shear numerical simulations with special focus on strain inhomogeneities, as the main driving force for spheroidization is considered to be the formation of intense shearing within alpha lamellae. The proposed modeling approach combining Finite Element Method (FEM) with DMR allowed for much more detailed numerical analysis of deformation behavior of two phase titanium alloys at the micro scale and provided information such as strain localization and stress distributions within the alpha and beta phases. It was showed that presented model offers a new and powerful tool to study the physical bases of microstructure evolution processes such as spheroidization or recrystallization of Ti alloys. It shows good potential in simulation of deformation processes of complex two-phase morphologies that is a crucial step towards optimization of process parameters during hot forming of Ti-6Al-4V alloys. (C) 2015 Politechnika Wroclawska. Published by Elsevier Sp. z.o.o. All rights reserved.
机译:在本工作中,利用数字材料表示(DMR)方法来模拟两相Ti-6Al-4V合金的变形行为。产生两种相位结构的DMR模型,含有β基质层内和等轴内的α颗粒的不同形态。然后分离每个相,分配不同的机械性能。随后,使用简单的剪切数值模拟测试它们对装载的反应,具有特别聚焦在应变的不均匀性上,因为球形的主要驱动力被认为是α薄片内部的强烈剪切。所提出的建模方法将有限元方法(FEM)与DMR相结合,以便更详细地进行微尺度两相钛合金的变形行为的更详细数值分析,并提供诸如α和β相中的应变定位和应力分布之类的信息。据表明,呈现的模型提供了一种新的强大的工具,可以研究微观结构演化过程的物理基础,例如Ti合金的球化或再结晶。它显示了复杂两相形态的变形过程模拟的良好潜力,这是在Ti-6Al-4V合金的热成形过程中优化工艺参数的关键步骤。 (c)2015 Politechnika Wroclawska。由elsevier sp发布。动物园。版权所有。

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