首页> 外文期刊>International Journal Precision Engineering Manufacturing-Green Technology >Flow-induced Orientations of Fibers and Their Influences on Warpage and Mechanical Property in Injection Fiber Reinforced Plastic (FRP) Parts
【24h】

Flow-induced Orientations of Fibers and Their Influences on Warpage and Mechanical Property in Injection Fiber Reinforced Plastic (FRP) Parts

机译:纤维的流动诱导的纤维取向及其对注射纤维增强塑料(FRP)件中翘曲和力学性能的影响

获取原文
获取原文并翻译 | 示例
           

摘要

During the past two centuries, due to too fast growth of the human population, the pollution made by human has seriously impacts on our environment, particularly, for the CO(2)emission. To diminish the CO(2)emission problem, one of the effective solutions is applying lightweight material, such as the fiber-reinforced plastics (FRP), to replace metal in the manufacturing of transportation vehicles. However, since the reinforced function of the fibers inside plastic matrix is very complex, it is not easy to be visualized and managed. Specifically, the connection from microstructures of the fibers to the physical properties of the final product is far from our understanding. In this study, we have proposed a benchmark with three standard specimens based on ASTM D638 with different gate designs. This system is used to study the fiber microstructures and associated mechanical properties using numerical simulation and experimental studies. Results showed that the tensile properties (including tensile modulus and tensile stress) of all three ASTM standard specimens can be improved significantly in the appearance of the fibers. Moreover, the tensile properties variation of the finished parts associated with the microstructures of the short fibers based on the gate design have been also investigated. Specifically, the tensile modulus and the strength of the Model I are greater than that of Model II, while Model III is much less than others because of its double gate effect. The reason why the tensile modulus and the strength of the Model I is greater than that of Model II is due to some entrance effect. That entrance effect will further provide flow-induced fiber orientation to melt and then enhance the tensile properties of Model I. To confirm the observation, a series simulation and experimental studies have been performed. Specifically, the fiber orientation distribution is predicted using CAE, and verified using micro-CT scan and image analysis by Avizo software. Hence, the correlation from fiber microstructure feature (particularly in fiber orientation) to tensile modulus and tensile stress for fiber reinforced thermoplastic (FRP) in injection molding process can be validated.
机译:在过去的两个世纪里,由于人口的增长太快,人类的污染严重影响了我们的环境,特别是对于CO(2)排放。为了减少CO(2)发射问题,其中一个有效的解决方案是施加轻质材料,例如纤维增强塑料(FRP),以取代运输车辆制造中的金属。然而,由于塑料基质内的纤维的增强功能非常复杂,因此不容易可视化和管理。具体地,从纤维的微观结构与最终产品物理性质的连接远非我们的理解。在这项研究中,我们提出了一种基于三标准标本的基准,基于ASTM D638,具有不同的栅极设计。该系统用于研究使用数值模拟和实验研究的纤维微结构和相关机械性能。结果表明,在纤维的外观中,所有三种ASTM标准样品的拉伸性质(包括拉伸模量和拉伸应力)可以显着提高。此外,还研究了与基于栅极设计的短纤维的微结构相关联的成品部件的拉伸性能变化。具体地,抗拉模量和模型I的强度大于模型II的强度,而III的模型III的速度远小于其他栅极效应。抗拉模量和模型I的强度大于模型II的强度是由于某些入口效应。该入口效应将进一步提供流动诱导的纤维取向以熔化,然后增强模型I的拉伸性能。为了确认观察,已经进行了串联模拟和实验研究。具体地,使用CAE预测纤维取向分布,并使用Avizo软件使用Micro-CT扫描和图像分析来验证。因此,可以验证从纤维微结构特征(特别是纤维取向)与注射成型过程中纤维增强热塑性(FRP)的拉伸模量和拉伸应力的相关性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号