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Compression molding of chopped woven thermoplastic composite flakes

机译:切碎的机织热塑性复合片的压模

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摘要

Continuous fiber reinforced composites with high-performance thermoplastic polymer matrices have an enormous potential in terms of performance, production rate, cost efficiency and recyclability. The use of this relatively new class of materials by the aerospace and automotive industry has been growing steadily during the last decade. However, the use of continuous reinforcements limit the complexity of the shape of the end products, as defects such as wrinkles can form during processing. Moreover, a significant amount of process waste is generated, which lowers the efficiency of the conventional production processes involving a prepreg cutting stage and/or final trimming stages. The overall efficiency of the manufacturing value chain of composites can be improved by adjoining a complementary manufacturing process that utilizes the process waste incurred in the primary process. The discontinuous form of reinforcements in the reclaimed material will provide a means to manufacture complex 3D geometries with near-net edges and at the same time use the raw material efficiently. However, the discontinuities in the reinforcing phase lead to a reduced mechanical performance compared to continuous reinforcements. Suitable applications include semi-structural parts and non-load bearing structures. This thesis focuses on the processing of planar discontinuous reinforcements and the associated mechanical performance. Chopped thermoplastic semi-preg with a woven fabric reinforcement, referred to as flakes, is considered as a standalone molding compound in this study. A compression molding process is chosen to manufacture parts, as it allows for complex geometries while retaining a long fiber length. Although processing of different types of discontinuous reinforcements has been studied in the past, the processing of the specific class of planar reinforcements with a woven architecture and high fiber content has not been explored so far. The principal objective is to develop a strategy for manufacturing woven-flake reinforced parts with good quality and consistent mechanical properties. For achieving this goal, the flow behavior of chopped woven material, process induced jamming of the material and the mechanical properties of molded plates are experimentally investigated and are explained with theoretical models. The work presented in the thesis shows the multidisciplinary nature of the problem, with strong correlations between the material, process and the design of the part leading to the final part performance. Therefore, a processing strategy is proposed which takes into consideration the aforementioned three basic blocks to manufacture consistent parts. Finally, the proposed strategy is validated by manufacturing a full-scale part with typical design features, which successfully demonstrates the processing capabilities of the material and the developed process.
机译:具有高性能热塑性聚合物基体的连续纤维增强复合材料在性能,生产率,成本效率和可回收性方面具有巨大潜力。在过去的十年中,航空航天和汽车行业对这类相对较新的材料的使用一直在稳定增长。但是,连续的增强材料的使用限制了最终产品形状的复杂性,因为在加工过程中会形成诸如皱纹的缺陷。而且,产生大量的工艺废物,这降低了包括预浸料切割阶段和/或最终修整阶段的常规生产过程的效率。复合材料的制造价值链的整体效率可以通过使用主要过程中产生的过程浪费的补充制造过程来提高。再生材料中增强材料的不连续形式将提供一种方法来制造具有接近最终边缘的复杂3D几何形状,并同时有效地使用原材料。但是,与连续增强相比,增强阶段的不连续性导致机械性能下降。合适的应用包括半结构零件和非承重结构。本文主要研究平面不连续钢筋的加工及其相关的力学性能。在本研究中,具有机织织物增强材料的短切热塑性半固化片被称为薄片,被认为是一种独立的模塑料。选择压缩成型工艺来制造零件,因为它允许复杂的几何形状同时保留较长的纤维长度。尽管过去已经研究了不同类型的不连续增强材料的加工方法,但是到目前为止,尚未探索出具有编织结构和高纤维含量的特定类别的平面增强材料的加工方法。主要目标是制定一种策略,以制造具有良好质量和一致机械性能的片状增强片。为了实现这一目标,对短切编织材料的流动行为,过程引起的材料堵塞以及模压板的机械性能进行了实验研究,并用理论模型进行了解释。本文提出的工作表明了问题的多学科性质,在零件的材料,工艺和设计之间存在很强的相关性,从而导致最终零件的性能。因此,提出了一种考虑上述三个基本模块来制造一致零件的加工策略。最后,通过制造具有典型设计特征的全尺寸零件来验证所提出的策略,该零件成功地展示了材料的加工能力和开发的工艺。

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