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首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >An Orthotropic Integrated Flow-Stress Model for Process Simulation of Composite Materials—Part II: Three-Phase Systems
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An Orthotropic Integrated Flow-Stress Model for Process Simulation of Composite Materials—Part II: Three-Phase Systems

机译:复合材料工艺模拟的正交集成流量模型 - 第二部分:三相系统

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摘要

In this paper, the two-phase orthotropic integrated flow-stress (IFS) process model presented in Part I is extended to a three-phase model where the third-phase accounts for the presence of gas in the composite material system. The gas flow and its compressibility are taken into account, while the seamless transformation of the resin material from its initially liquid stage to a cured solid material is incorporated within the previously developed IFS framework. A three-phase orthotropic flow model is employed to describe the behavior of the composite material during the pregelation stage of the process cycle which transforms continuously to a solid mechanics model using a stepwise three-phase micromechanics. The model is implemented in a u – v – P plane strain finite element code similar to that presented in Part I but with extended degrees-of-freedom accounting for the velocity and pressure of the gas phase. The numerical model is applied to the debulking and curing process of an L-shaped unidirectional composite laminate. Performance of the model is assessed through evaluating the process-induced deformations and residual porosity distribution over the spatial domain of the laminate.
机译:在本文中,在第一部分中呈现的两相正交综合流量(IFS)过程模型延伸到三相模型,其中第三相对于复合材料系统中的气体存在。将气流及其可压缩性考虑在内,而树脂材料从其最初液位到固化的固体材料的无缝变换结合在先前显影的IFS框架内。使用三相正交流量模型来描述在处理循环的预胶形阶段期间复合材料的行为,其使用逐步三相微机械在固体力学模型中连续变换。该模型在U-V-P平面应变有限元件中实现,其类似于第一部分I的,但具有扩展的自由度核对气相的速度和压力。数值模型应用于L形单向复合层压板的DeBulking和固化过程。通过评估层压板的空间结构域的过程诱导的变形和残留孔隙率分布来评估模型的性能。

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