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Capabilities of Macroscopic Forming Simulation for Large-Scale Forming Processes of Dry and Impregnated Textiles

机译:用于干燥和浸渍纺织品的大规模成型工艺宏观形成模拟的能力

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Forming of continuously fibre-reinforced polymers (CoFRP) has a significant impact on the structural performance of composite components, underlining the importance of forming simulation for CoFRP product development processes. For an integrated development of industrial composite components, efficient forming simulation methods are in high demand. Application-oriented method development is particularly crucial for industrial needs, where large and complex multi-layer components are manufactured, commercial FE software is used, and yet high prediction accuracy is required. To meet industrial demands, this contribution gives an insight in macroscopic forming simulation approaches that utilize the FE software Abaqus in combination with user-defined material models and finite elements. Three CoFRP forming technologies are considered, which are in industrial focus due to their suitability for mass production: textile forming of dry unidirectional non-crimp fabrics (UD-NCF), thermoforming of pre-impregnated UD tapes and wet compression moulding (WCM). In addition to the highly anisotropic, large-strain material behaviour that composite forming processes have in common, the three process technologies face various process-specific modelling challenges. UD-NCFs require material models that capture the deformation behaviour and the slippage of the stitching. Thermoforming of UD tapes is highly rate- and temperature-dependent, calling for rheological membrane and bending modelling. Moreover, a thermomechanical approach including crystallisation kinetics enables the prediction of potential phase-transition during forming and resulting defects in the semi-crystalline thermoplastic matrix. For simultaneous forming and infiltration in wet compression moulding, a finite Darcy-Progression-Element is superimposed with the membrane and shell elements for forming simulation, capturing infiltration-dependent material properties. The three outlined technologies illustrate the complexity and importance of further simulation method development to support future process development.
机译:形成连续纤维增强聚合物(COFRP)对复合部件的结构性能产生显着影响,强调了COFRP产品开发过程的模拟的重要性。为了整合工业复合部件的开发,有效的成型模拟方法需求量很高。面向应用的方法开发对于工业需求尤其至关重要,其中制造了大型和复杂的多层组件,使用商业FE软件,但需要高预测精度。为了满足工业需求,这一贡献在宏观上形成了利用FE软件ABAQU与用户定义的材料模型和有限元件的宏观形成模拟方法。考虑了三种COFRP成型技术,这是由于其批量生产的适用性:干燥单向非压接织物(UD-NCF)的纺织品形成,预浸渍的UD带的热成型和湿式压缩成型(WCM)。除了高位各向异性的大规模物质行为之外,复合成型过程具有共同的普遍性,三个过程技术面临各种具体的方法特异性建模挑战。 UD-NCFS需要捕获变形行为和缝合滑动的材料模型。 UD胶带的热成型是高速率和温度依赖性的,呼吁流变膜和弯曲建模。此外,包括结晶动力学的热机械方法能够在半结晶热塑性基质中形成和产生缺陷期间预测潜在的相转移。为了在湿式压缩成型中进行同时形成和渗透,有限的达胞进展元件用膜和壳体元件叠加,用于形成模拟,捕获渗透依赖性材料特性。三个概述技术说明了进一步模拟方法开发的复杂性和重要性,以支持未来的过程开发。

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