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A two-phase integrated flow-stress process model for composites with application to highly compressible phases

机译:复合材料的两相集成流应力过程模型及其在高度可压缩相中的应用

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摘要

A new methodology is presented to integrate the simulation of flow and stress development into a unified computational modelling framework for processing of two-phase composite materials. The governing equations are developed for the general case of a composite material system that, as a consequence of curing, undergoes a transition from a fluid-like state into an elastic solid. The constitutive equations employed are such that they provide a continuous representation of the evolving material behaviour while maintaining consistency with the formulations that are typically used to represent the material at each of the two extremes. The formulation is capable of handling highly compressible phases, which is an important consideration when extending the model to a three-phase model that includes gas as a distinct phase. The model is implemented in a 2D plane strain u-v-P finite element code developed in MATLAB. Numerical examples are presented to demonstrate the capability of the integrated flow-stress model to predict the flow-compaction and stress development throughout the curing process of thermoset composite materials. The interactive effects of resin flow and stress development under various representative boundary conditions are investigated and comparisons are made with the predicted results obtained from the application of the stress model alone. (C) 2017 Elsevier Ltd. All rights reserved.
机译:提出了一种新的方法,将流动和应力发展的模拟集成到用于处理两相复合材料的统一计算模型框架中。针对复合材料系统的一般情况开发了控制方程,该复合材料系统由于固化而经历了从类流体状态到弹性固体的转变。所使用的本构方程使得它们提供了不断演变的材料行为的连续表示,同时保持了与通常用于在两种极端情况下代表材料的配方的一致性。该配方能够处理高度可压缩的相,这是将模型扩展到包含气体作为不同相的三相模型时的重要考虑因素。该模型以在MATLAB中开发的2D平面应变u-v-P有限元代码实现。数值例子说明了集成流应力模型预测热固性复合材料整个固化过程中的流压和应力发展的能力。研究了在各种代表性边界条件下树脂流动与应力发展的相互作用,并与单独应用应力模型获得的预测结果进行了比较。 (C)2017 Elsevier Ltd.保留所有权利。

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