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Effect of configuration in intermediate materials on textile processability by TFP technology

机译:中间材料配置对TFP技术纺织加工性的影响

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Continuous fiber reinforced thermoplastic (c-FRTP) has been focused on because of not only the excellent specific rigidity and strength but also the recyclability and the secondary workability due to a feature of the thermoplastic resin as the matrix. However, unlike the thermosetting resin, it is very difficult to impregnate thermoplastic resin into continuous fiber bundles because of its high melt viscosity. In order to solve this problem, various intermediate materials have been developed. On the other hand, Tailored Fiber Placement (TFP) is a textile manufacturing technology for continuous fiber preforming. Compared to other textile manufacturing processes, the continuous fiber material can be placed in any direction according to the requirement. From this characteristic, it is possible to change the local fiber orientation in the fiber reinforced composite material, so that mechanical properties of reinforcing fibers can be utilized to maximum. Applying fibrous intermediate material for c-FRTP to TFP technology, the high cycle c-FRTP molding with optimized fiber orientation can be achieved. However, in order to prepare a preform of c-FRTP, textile processability (flexibility) is needed for fibrous intermediate materials as dry fiber. Therefore, to develop fibrous intermediate material with both better impregnation property and flexibility for TFP technology is required. In this study, the effect of fabrication condition of newly developed fibrous intermediate material called PCY (Partially Impregnated Commingled Yarn) on preforming by TFP technology was investigated. The textile processability was evaluated by measuring the deformation resistance of various PCYs. The unidirectional (UD) preforms were prepared using PCY with better textile processability and impregnation property. In order to investigate the effect of stitch yarn on impregnation property during molding, the impregnation state was quantified by cross-sectional observation of various specimens. In addition, a tensile test using UD specimen was carried out to investigate the effect of stitch yarn on mechanical properties.
机译:连续纤维增强热塑性塑料(C-FRTP)已经集中于,因为不仅是优异的特定刚度和强度,而且由于热塑性树脂作为基质的特征,还具有可回收性和二级可加工性。然而,与热固性树脂不同,由于其高熔体粘度,非常难以将热塑性树脂浸渍到连续纤维束中。为了解决这个问题,已经开发了各种中间材料。另一方面,量身定制的纤维放置(TFP)是一种用于连续纤维预成型的纺织制造技术。与其他纺织制造工艺相比,连续纤维材料可以根据要求置于任何方向。从该特性来看,可以改变纤维增强复合材料中的局部纤维取向,从而可以利用增强纤维的机械性能至最大值。将C-FRTP应用于TFP技术的纤维中间体材料,可以实现具有优化纤维取向的高循环C-FRTP模制。然而,为了制备C-FRTP的预制件,纤维中间材料需要纺织加工性(柔韧性)作为干纤维。因此,为了开发纤维中间材料,具有更好的浸渍性能,需要进行TFP技术的灵活性。在该研究中,研究了新开发的纤维中间材料的制造条件,称为PCY(部分浸渍混合纱线)对TFP技术预成型的影响。通过测量各种PCYS的变形性来评估纺织加工性。使用PCY制备单向(UD)预制件,具有更好的纺织加工性和浸渍性。为了探讨缝线纱线对模塑过程中浸渍性的影响,通过各种样本的横截面观察来定量浸渍状态。另外,进行使用UD样本的拉伸试验,以研究针纱对机械性能的影响。

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