Alotaibi Hatim, Abeykoon Chamil, Soutis Constantinos, Jabbari Masoud
Department of Mechanical, Aerospace and Civil Engineering, The University of Manchester, Manchester M13 9PL, UK.
Northwest Composites Centre, Department of Materials, The University of Manchester, Manchester M13 9PL, UK.
Polymers (Basel). 2023 Mar 22;15(6):1572. doi: 10.3390/polym15061572.
This paper presents a numerical framework for modelling and simulating convection-diffusion-reaction flows in liquid composite moulding (LCM). The model is developed in ANSYS Fluent with customised user-defined-functions (UDFs), user-defined-scalar (UDS), and user-defined memory (UDM) codes to incorporate the cure kinetics and rheological characteristics of thermoset resin impregnation. The simulations were performed adopting volume-of-fluid (VOF)-a multiphase flow solution-based on finite volume method (FVM). The developed numerical approach solves Darcy's law, heat transfer, and chemical reactions in LCM process simultaneously. Thereby, the solution scheme shows its ability to provide information on flow-front, viscosity development, degree of cure, and rate of reaction at once unlike existing literature that commonly focuses on impregnation stage and cure stage in isolation. Furthermore, it allows online monitoring, controlled boundary conditions, and injection techniques (for design of manufacturing) during the mould filling and curing stages. To examine the validity of the model, a comparative analysis was carried out for a simple geometry, in that the numerical results indicate good agreement-3.4% difference in the degree of cure compared with previous research findings.
本文提出了一种用于模拟和仿真液体复合材料成型(LCM)中对流-扩散-反应流动的数值框架。该模型是在ANSYS Fluent中通过定制用户定义函数(UDF)、用户定义标量(UDS)和用户定义内存(UDM)代码开发的,以纳入热固性树脂浸渍的固化动力学和流变特性。采用基于有限体积法(FVM)的多相流解决方案——流体体积法(VOF)进行模拟。所开发的数值方法同时求解LCM过程中的达西定律、传热和化学反应。因此,与现有文献通常孤立地关注浸渍阶段和固化阶段不同,该解决方案能够一次性提供关于流动前沿、粘度发展、固化程度和反应速率的信息。此外,它允许在模具填充和固化阶段进行在线监测、控制边界条件以及注射技术(用于制造设计)。为了检验模型的有效性,针对一个简单几何形状进行了对比分析,数值结果表明一致性良好——与之前的研究结果相比,固化程度的差异为3.4%。