Systematic Approach to Optimize Injection Molding and Microstructural Analysis of Fiber Reinforced Resins for Anisotropic Mechanical Characterization

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Abstract

Fiber reinforced resin materials are increasingly being used in aviation, automotive, mass transportation and healthcare industries. Engineers are keen to explore new design concepts with such materials, since these materials promises to offer high strength to weight ratio, elimination of secondary operations and ease in process ability to form complex shaped parts through injection molding. The mechanical properties of molded parts made from such materials depends on the orientation of the reinforcing fibers. Such orientation occurs in fiber-reinforced plastics, since the fibers in the plastic melt during processing, will orient in different directions under the influence of shear forces that are driven by flow pattern. This paper provides details on systematic and abusive injection molding of test specimens and characterizing anisotropic mechanical data that can be used for fiber orientation predictions in computer aided engineering programs. Systematic molding as compared to abusive molding, identifies optimum molding parameters that reduces part–to-part variation during injection molding, thereby reduces part rejections. It provides optimum part performance during application and the process settings are repeatable and reproducible. The intention of this paper is to share widely such a method to make this process less of a skill or art. The mechanical properties covered here are elastic, shear modulus and poisson ratio. Scanning electron microscopy (SEM) analysis revealed that most of the fibers are aligned in melt flow direction for systematic molded plaques, leading to higher stiffness and strength characteristics as compared to transverse to melt flow.
基于各向异性力学表征的纤维增强树脂注射成型优化方法及微观结构分析
纤维增强树脂材料越来越多地应用于航空、汽车、大众运输和医疗保健行业。工程师们热衷于用这些材料探索新的设计概念,因为这些材料有望提供高强度重量比,消除二次操作,并且易于通过注射成型形成复杂形状的零件。由这种材料制成的模制件的机械性能取决于增强纤维的方向。这种取向发生在纤维增强塑料中,因为塑料中的纤维在加工过程中熔化,在流型驱动的剪切力的影响下,会向不同的方向取向。本文详细介绍了试验样品的系统和滥用注射成型,并描述了可用于计算机辅助工程程序中纤维取向预测的各向异性力学数据。系统成型与滥用成型相比,确定最佳成型参数,减少注射成型过程中零件之间的变化,从而减少零件报废。它在应用过程中提供最佳的零件性能,工艺设置是可重复和可再现的。本文的目的是广泛分享这种方法,使这一过程不再是一种技能或艺术。力学性能包括弹性、剪切模量和泊松比。扫描电子显微镜(SEM)分析显示,对于系统成型斑块,大多数纤维沿熔体流动方向排列,与横向熔体流动相比,具有更高的刚度和强度特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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