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A 3D Modelling Approach for Fluid Progression during Process Simulation of Wet Compression Moulding – Motivation & Approach

机译:湿式压缩成型过程模拟过程中流体进展的3D建模方法 - 动机与方法

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Wet compression moulding (WCM) provides large-scale production potential for continuous fibre-reinforced structural components due to simultaneous infiltration and draping during moulding (viscous draping). Due to thickness-dominated infiltration of the laminate, comparatively low cavity pressures are sufficient – a considerable economic advantage. Experimental and numerical investigations prove strong mutual dependencies between the physical mechanisms, especially between resin flow and textile forming. Understanding and suitable modelling of these occurring physical mechanisms is crucial for process development and final part design. While existing modelling approaches are suitable for infiltration of preformed fabrics within various liquid moulding technologies, such as CRTM/RTM or VARI, WCM requires a fully coupled simulation approach for resin progression and concurrent stack deformation. Thus, the key challenge is to efficiently link these two aspects in a suitable framework. First, this work demonstrates that a three-dimensional approach for fluid progression during moulding is needed to capture WCM-process boundary conditions. In this regard, a novel test bench is used to investigate the impact of infiltration on the transversal compaction behaviour of a woven fabric. Moreover, the test setup is applied to determine the in-plane permeability values of the same material corresponding to the beforehand applied compaction states. Results are verified by comparison with an existing linear test setup.In the second part, initial steps towards a three dimensional extension of an existing 2D modelling approach are outlined. For this purpose, a macroscopic FE-based three-dimensional formulation of Darcy’s law is utilized within a User-Element in Abaqus/Explicit. Essential mechanisms within the element are presented. Additional control volumes (FE/CV) are applied to ensure mass conservation. Eventually, it is demonstrated, that the simulation model can predict the average fluid pressure beneath a punch during pre-infiltrated compaction experiments. Finally, major benefits and forthcoming steps for a fully-coupled 3D modelling approach for WCM are outlined.
机译:湿式压缩成型(WCM)为连续纤维增强的结构部件提供大规模的生产电位,因为在模塑期间(粘性覆盖)同时渗透和覆盖。由于层压板的厚度主导渗透,相对低的腔压力足够了 - 具有相当大的经济优势。实验和数值研究证明了物理机制之间的强烈相互依赖性,特别是树脂流动和纺织成型之间的互补性。这些发生的物理机制的理解和合适的建模对于过程开发和最终部件设计至关重要。虽然现有的建模方法适于在各种液体模塑技术(例如CRTM / RTM或Vari)内的预成型织物渗透,但WCM需要完全耦合的树脂进展和并发堆叠变形的耦合模拟方法。因此,关键挑战是有效地将这两个方面的合适框架联系起来。首先,该工作表明,需要在模制期间流体进展的三维方法来捕获WCM-Process边界条件。在这方面,新型测试台用于研究渗透对织物的横向压实行为的影响。此外,应用测试设置以确定与预先施加的压实状态相对应的相同材料的面内渗透率值。通过与现有的线性测试设置进行比较验证了结果。在第二部分中,概述了朝向现有2D建模方法的三维扩展的初始步骤。为此目的,在ABAQUS /明确的用户元素中使用达西法律的宏观Fe的三维制剂。提出了元素内的基本机制。应用额外的控制体积(Fe / CV)以确保质量保护。最终,证明模拟模型可以在预渗透的压实实验期间预测冲头下方的平均流体压力。最后,概述了WCM全耦合3D建模方法的主要优点和即将到来的步骤。

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