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Study on the Micro-structures of Long Fiber through Runner and Cavity in Injection Molding for Reinforced Thermoplastics (FRT)

机译:通过对增强热塑性塑料注射成型流道和腔微结构的研究(FRT)

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摘要

Lightweight technology has been applied into many industries especially for automotive to enhance the fuel efficiency. One of most famous methods is applied fiber- reinforced thermoplastics (FRT) technology, it includes short and long fiber-reinforced thermoplastics (FRT) to support lightweight technology. However, the enhancement mechanism by the microstructures of the fibers in FRT is still too complicated to understand. In this study, we designed a benchmark to study the fiber microstructures based on ASTM D638 with dog-bond system. First, we have tried to study how the geometry of cavity influences the fiber orientation during the injection processes. Furthermore, we have paid the attention on the variation of the fiber length distribution as the injection molding processing. Results show that the geometry of cavity has significant effect on the fiber orientation during the injection processes. Since the system has contraction and expansion structure, the orientation tensor component a11 corresponding to the flow direction, will be enhanced and then decreased along the cavity. Moreover, the fiber lengths have dramatically sharp distribution on skin layer when melt goes through the gate into the cavity. It will allow almost 90% lengths are broken through the skin layer. Meanwhile, using numerical visualization from runner to cavity through core layer, there is about 30% length broken during the journey in runner section. Finally, some fiber orientation results are compared with some literature's. Results showed that our numerical predictions are matched with that of literature quite well in the trend.
机译:轻量级技术已应用于许多行业,特别是汽车以提高燃油效率。最着名的方法之一是应用纤维增强的热塑性塑料(FRT)技术,它包括短纤维增强热塑性塑料(FRT),以支持轻质技术。然而,通过FRT中纤维的微观结构的增强机制仍然太复杂地理解。在本研究中,我们设计了一种基于ASTM D638与狗粘合系统研究纤维微观结构的基准。首先,我们尝试研究腔的几何形状如何影响注射过程中的纤维取向。此外,我们已经注意到纤维长度分布的变化作为注塑加工。结果表明,在注射过程中,腔的几何形状对纤维取向具有显着影响。由于系统具有收缩和膨胀结构,因此将增强对应于流动方向的定向张量部件A11,然后沿着空腔减小。而且,当熔体通过栅极进入腔时,纤维长度在皮肤层上显着分布。它将允许近90%的长度通过皮肤层突破。同时,使用从赛跑者通过核心层的数值可视化,在赛道部分的旅程中有大约30%的长度破碎。最后,将一些纤维取向结果与一些文献进行了比较。结果表明,我们的数值预测与文学中的数值预测相匹配,这呈趋势。

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