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Exploring the behavior of glass fiber reinforcements under vibration-assisted compaction

机译:探索玻璃纤维增​​强材料在振动压实下的行为

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In this study, a new vibration-assisted approach is proposed for compacting dry fibrous reinforcements in liquid composite molding (LCM). The first steps of LCM processes involve fiber bed lay-up within a rigid mold, followed by the closure of the counter-mold and subsequent fiber compaction. Traditionally, static compaction has been applied to level the thickness of the reinforcement and achieve high fiber volume contents. However, fibrous materials under transverse compression exhibit viscoelastic characteristics that can be exploited through dynamic loading in order to achieve a higher level of compaction. In this work, a vibration-assisted compaction technique has been developed, in which static and dynamic stresses are combined to provide specific compaction conditions. A series of tests allowed exploring the impact of different loading conditions (i.e. static force, dynamic force, and vibratory frequency) on the compaction response of fibrous preforms. The effects of vibration-assisted compaction on various fabric architectures and different numbers of stacked layers were explored as well. The analysis of experimental outputs allows identifying the governing parameters of this new approach. The fiber volume contents obtained reveal that the use of a complex compressive load, composed of static and dynamic forces, can be very effective for the compaction of dry fibrous materials. Although vibration-assisted compaction remains a technology in its preliminary stage, this paper contributes to a better understanding of its potential and provides tools for eventual applications.
机译:在这项研究中,提出了一种新的振动辅助方法,用于压实液体复合材料成型(LCM)中的干纤维增强材料。 LCM工艺的第一步涉及在刚性模具中铺设纤维床,然后关闭对模,然后进行纤维压实。传统上,静态压实已被用于平整增强件的厚度并实现高纤维体积含量。然而,在横向压缩下的纤维材料表现出粘弹性特性,可以通过动态载荷加以利用,以实现更高的压实度。在这项工作中,已经开发了一种振动辅助压实技术,该技术将静应力和动应力组合在一起以提供特定的压实条件。一系列测试允许探索不同的加载条件(即静态力,动态力和振动频率)对纤维预成型件的压实响应的影响。还探讨了振动压实对各种织物结构和不同数量的堆叠层的影响。对实验结果的分析可以确定这种新方法的控制参数。所获得的纤维体积含量表明,由静态和动态力组成的复合压缩载荷的使用对于压实干燥纤维材料可能非常有效。尽管振动辅助压实仍处于初期阶段,但本文有助于更好地了解其潜力,并为最终应用提供了工具。

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