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Investigation on the Fiber Orientation Distributions and Their Influence on the Mechanical Property of the Co-Injection Molding Products

机译:共注射成型产品的纤维取向分布及其对力学性能的影响

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摘要

In recent years, due to the rapid development of industrial lightweight technology, composite materials based on fiber reinforced plastics (FRP) have been widely used in the industry. However, the environmental impact of the FRPs is higher each year. To overcome this impact, co-injection molding could be one of the good solutions. But how to make the suitable control on the skin/core ratio and how to manage the glass fiber orientation features are still significant challenges. In this study, we have applied both computer-aided engineering (CAE) simulation and experimental methods to investigate the fiber feature in a co-injection system. Specifically, the fiber orientation distributions and their influence on the tensile properties for the single-shot and co-injection molding have been discovered. Results show that based on the 60:40 of skin/core ratio and same materials, the tensile properties of the co-injection system, including tensile stress and modulus, are a little weaker than that of the single-shot system. This is due to the overall fiber orientation tensor at flow direction (A ) of the co-injection system being lower than that of the single-shot system. Moreover, to discover and verify the influence of the fiber orientation features, the fiber orientation distributions (FOD) of both the co-injection and single-shot systems have been observed using micro-computerized tomography (μ-CT) technology to scan the internal structures. The scanned images were further utilizing Avizo software to perform image analyses to rebuild the fiber structure. Specifically, the fiber orientation tensor at flow direction (A ) of the co-injection system is about 89% of that of the single-shot system in the testing conditions. This is because the co-injection part has lower tensile properties. Furthermore, the difference of the fiber orientation tensor at flow direction (A ) between the co-injection and the single-shot systems is further verified based on the fiber morphology of the μ-CT scanned image. The observed result is consistent with that of the FOD estimation using μ-CT scan plus image analysis.
机译:近年来,由于工业轻量化技术的飞速发展,基于纤维增强塑料(FRP)的复合材料已在工业中得到广泛使用。但是,玻璃钢的环境影响每年都更高。为了克服这种影响,共注射成型可能是很好的解决方案之一。但是如何对皮/芯比进行适当的控制以及如何管理玻璃纤维的取向特征仍然是重大挑战。在这项研究中,我们同时应用了计算机辅助工程(CAE)模拟和实验方法来研究共注入系统中的纤维特性。具体而言,已经发现了纤维取向分布及其对单次注射和共注射模塑的拉伸性能的影响。结果表明,基于60:40的皮/芯比和相同的材料,共注射系统的拉伸性能(包括拉伸应力和模量)比单次注射系统稍弱。这是由于共注射系统在流动方向(A)上的总体纤维取向张量低于单次注射系统。此外,为了发现和验证纤维取向特征的影响,已经使用微计算机断层扫描技术(μ-CT)观察了共注射系统和单次注射系统的纤维取向分布(FOD)。结构。扫描的图像进一步利用Avizo软件进行图像分析以重建纤维结构。具体而言,在测试条件下,共注射系统在流动方向(A)上的纤维取向张量约为单次注射系统的纤维取向张量的89%。这是因为共注射部分具有较低的拉伸性能。此外,基于μ-CT扫描图像的纤维形态,进一步验证了共注入系统和单次注入系统之间在流动方向(A)上的纤维取向张量的差异。观察到的结果与使用μ-CT扫描加图像分析的FOD估算结果一致。

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