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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 I: Two-Phase Systems
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An Orthotropic Integrated Flow-Stress Model for Process Simulation of Composite Materials—Part I: Two-Phase Systems

机译:复合材料工艺模拟的正交集成流量模型 - 第一部分:两相系统

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An integrated flow-stress (IFS) model provides a seamless and mechanistic connection between the two distinct regimes during the manufacturing process of composite materials, namely, fluid flow in the pregelation stage of the thermoset resin and stress development in the composite when it acts as a solid material. In this two-part paper, the two- and three-phase isotropic IFS models previously developed by the authors are extended to the general case of composite materials with orthotropic constituents. Part I presents the two-phase, fluid-solid, orthotropic model formulation for the case where the fluid phase solidifies during the course of curing. Part II extends the orthotropic formulation to a three-phase model that includes a gas phase as the third constituent of the composite material system. A broader definition of material properties in poroelasticity formulation is adopted in the development of the general orthotropic formulation. The model is implemented in a two-dimensional (2D) plane strain u - v - P finite element (FE) code and its capability in predicting the flow-compaction behavior and stress development is demonstrated through application to a case study involving an L-shaped unidirectional laminate undergoing curing on a conforming convex tool. Comparison of the results with those obtained from sole modeling of the stress development reveals the importance of capturing the simultaneous and interactive effect of the mechanisms involved during the entire process cycle using an IFS modeling approach presented in this paper.
机译:一个集成的流量应力(IFS)模型在复合材料制造过程中的两个不同的制度之间提供了无缝和机械连接,即在热固性树脂的预胶形阶段中的流体流动,并且当它起作用时,复合材料中的应力发育固体材料。在这篇两篇纸张中,由作者开发的两种和三相各向同性IFS模型延伸到具有正交成分的复合材料的一般情况。第一部分呈现为在固化过程中凝固的流体相凝固的情况下的两相,流体固体,正交模型配方。第二部分将正交配方延伸到三相模型,其包括气相作为复合材料系统的第三组成部分。在一般正交式制剂的发展中采用孔弹性制剂中材料特性的更广泛定义。该模型以二维(2D)平面应变U-V-P有限元(FE)代码实现,并且其在预测流动压缩行为和应力开发方面的能力通过应用于涉及L-的案例研究来证明。在符合凸起工具上形成固化的单向层压材料。结果对应力发展唯一建模的结果的比较揭示了使用本文呈现的IFS建模方法捕获在整个过程周期中所涉及的机制的同时和交互效果的重要性。

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