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Multi-scale Through-process Modeling and Simulation in Precision Forming of Complex Components of Difficult-to-deform Material

机译:难以形成难以变形材料复合成分的多尺度通过过程建模与仿真

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Precision forming of complex components of difficult-to-deform material, which satisfies the increasing demands of high performance and light weight in aerospace industries, has become a research frontier in advanced plastic forming domains. Owning to the usage of difficult-to-deform materials and hard-to-form complex structure, and the requirement of excellent service performance, significant unequal deformation takes place during plastic forming of such components, which would increase the forming load, produce forming defects, deteriorate the service performance and make the control and optimization of the forming process difficult. How to coordinate and control the unequal deformation is the key problem urgently to be solved. The through-process multi-scale modeling and simulation are essential for developing control method of unequal deformation. To this end, a through-process multi-scale modeling strategy was proposed in the present work. It is composed of a microscale cellular automaton model which predicts the microstructural morphology development, a mesoscale crystal plasticity model which characterizes the mechanism of unequal deformation, a coupled macro-microscale internal state variable model which predicts the constitutive behavior and microstructure evolution of the material, and a macroscale finite element model which predicts the forming regulations and defects. The strategy was applied to the isothermal local loading forming of large-scale complex titanium alloy component. The obtained results can guide the integrated forming of shape and performance in manufacturing complex components of difficult-to-deform material.
机译:难以形成难以变形材料的复杂成分,满足航空航天工业中高性能和重量轻的越来越大的需求,已成为高级塑料形成域的研究前沿。拥有难以变形的材料和难以形成的复杂结构,以及优异的服务性能的要求,在塑料形成这些组件期间发生显着的不平等变形,这将增加成型载荷,产生形成缺陷,使服务性能恶化,并使成型过程的控制和优化困难。如何协调和控制不平等的变形是紧急解决的关键问题。通过过程多尺度建模和仿真对于开发不等变形的控制方法至关重要。为此,在本作工作中提出了一种通过过程的多尺度建模策略。它由微观蜂窝自动机制模型组成,该模型预测了微观结构形态的发展,其特征在于不等变形机制的Mescle晶体塑性模型,一种预测材料的组成型行为和微观结构演化的耦合宏观微观的内部状态变量模型,和宏观有限元模型,其预测形成规则和缺陷。将该策略应用于大型络合钛合金组分的等温局部装载形成。所得结果可以在制造难以变形材料的复杂组分中引导整合的形状和性能。

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