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首页> 外文期刊>Journal of Composite Materials >Efficient dual-scale flow and thermo-chemo-rheological coupling simulation during on-line mixing resin transfer molding process
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Efficient dual-scale flow and thermo-chemo-rheological coupling simulation during on-line mixing resin transfer molding process

机译:高效的双尺度流动和热化学流变耦合模拟在线混合树脂转移成型工艺

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摘要

Simulation tools are required to ease the determination of the optimal process parameters and injection strategy of short cycle resin transfer molding (RTM). The developed finite element method/volume of fluid numerical tool aims to simulate accurately and efficiently the flow of a reactive resin mixed on-line in a dual-scale porous reinforcement during the resin transfer molding process. A macroscopic mesh deals with the flow inside of the channels of the reinforcement while a representative microstructure associated to each element allows reproducing both the unsaturated area and the intra-tow resin storage. Degree of cure, temperature, and viscosity are updated and transported at each time step, both in the channels and in the tows of the fabric using advection equations and sink and source terms for inter-scale exchanges. A new flexible approach based on the textile's geometry defines automatically the representative microstructure associated to each macroscopic element depending on its size and shape. Additionally, tow saturation is simplified under the assumption of high-speed injection to a sum of one-dimensional transverse tow saturation problems, which reduces the computational cost of the simulation. Convergence tests have highlighted the ability for the simulation tool to treat with an equivalent degree of accuracy a saturation problem with elements exhibiting element sizes three times smaller to three times bigger than the length of the unsaturated area. Significant computation time reductions have also been noticed when large elements were used. Finally thermo-chemo-rheological coupled simulations have been conducted, highlighting the importance of taking the dual-scale effect into account when simulating reactive injections with on-line mixing.
机译:需要仿真工具来缓解短循环树脂转印成型(RTM)的最佳过程参数和注射策略的确定。开发的有限元法/体积的流体数值工具旨在在树脂转移成型过程中精确和有效地模拟在双尺度多孔加强件中在线混合在线混合的流动。宏观网格利用加强件的通道内部的流动,而与每个元件相关联的代表性微观结构允许再现不饱和区域和牵引树脂储存。固化程度,温度和粘度在每次步骤中更新并运输在通道中,并且在织物的截串中使用平行方程和水槽和源代码间交换的源。基于纺织物质的新灵活方法自动定义与每个宏观元件相关的代表性微观结构,这取决于其尺寸和形状。另外,在假设高速喷射到一维横向牵引问题的总和的情况下,简化了牵引饱和度,这降低了模拟的计算成本。收敛性测试突出显示模拟工具以等效程度的精度治疗的能力与表现出元素大小的元素大于比不饱和区域的长度小的三倍小到三倍的元素。当使用大量元素时,还注意到了显着的计算时间减少。最后进行了热化疗流变耦合模拟,突出了在用在线混合进行反应注射时考虑到考虑到两种效果的重要性。

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