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Thermoplastic pultrusion development and characterization of residual in pultruded composites with modeling and experiments.

机译:热塑性拉挤成型的发展和拉挤复合材料残余物的表征与模型和实验。

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摘要

Pultrusion processing is a technique to make highly aligned fiber reinforced polymer composites. Thermoset pultrusion is a mature process and well established, while thermoplastic pultrusion in still in its infancy. Thermoplastic pultrusion has not been well established because thermoplastic resins are difficult to process due to their high viscosity. However, thermoplastic resins offer distinct advantages that make thermoplastic pultrusion worth exploring. The present work centers on developing a method to design and validate a die for a thermoplastic pultrusion system. Analytical models and various software tools were used to design a pultrusion die. Experimental measurements have been made to validate the models. One-dimensional transient heat transfer analysis was used to calculate the time required for pre-impregnated E-Glass/Polypropylene tapes to melt and consolidate into profiled shapes. Creo Element/Pro 1.0 was used to design the die, while ANSYS Work Bench 14.0 was used to conduct heat transfer analysis to understand the temperature profile of the pultrusion apparatus. Additionally Star-CCM+ was used to create a three-dimensional fluid flow model to capture the molten polymer flow inside the pultrusion die. The fluid model was used to understand the temperature of the flow and the force required to pull the material at any given temperature and line speed. A complete pultrusion apparatus including the die, heating unit, cooling unit, and the frame has been designed and manufactured as guided by the models, and pultruded profiles have been successfully produced. The results show that the analytical model and the fluid model show excellent correlation. The predicted and measured pulling forces are in agreement and show that the pull force increases as the pull speed increases.;Furthermore, process induced residual stress and its influence on dimensional instability, such as bending or bowing, on pultruded composites was analyzed. The study indicated that unbalanced layup can produce asymmetrical residual stress through the thickness and causes the part to bow. Furthermore, the residual stress through the thickness was mapped with excellent accuracy. A design of experiments around the processing parameters indicated that increase in pull speed or decrease in die temperature increased the residual stress within the part.
机译:拉挤成型工艺是制造高度对齐的纤维增强聚合物复合材料的技术。热固性拉挤成型是一个成熟的过程,并且已经建立了良好的工艺,而热塑性拉挤成型仍处于起步阶段。热塑性拉挤成型尚未得到很好的确立,因为热塑性树脂由于其高粘度而难以加工。但是,热塑性树脂具有明显的优势,使热塑性拉挤成型值得探索。目前的工作集中在开发一种方法来设计和验证用于热塑性拉挤成型系统的模具。分析模型和各种软件工具用于设计拉挤模具。已经进行了实验测量以验证模型。一维瞬态传热分析用于计算预浸渍的E-玻璃/聚丙烯胶带熔化并固结成异型形状所需的时间。 Creo Element / Pro 1.0用于设计模具,而ANSYS Work Bench 14.0用于进行传热分析以了解拉挤成型设备的温度曲线。此外,Star-CCM +用于创建三维流体流模型,以捕获拉挤模具内部的熔融聚合物流。流体模型用于了解流的温度以及在任何给定温度和线速度下拉动材料所需的力。在模型的指导下,已设计和制造了包括模具,加热单元,冷却单元和框架的完整拉挤成型设备,并成功生产了拉挤型材。结果表明,解析模型与流体模型具有良好的相关性。预测和测得的拉力是一致的,并且表明拉力随着拉速的增加而增加。此外,分析了过程引起的残余应力及其对拉挤复合材料的尺寸不稳定性(如弯曲或弯曲)的影响。研究表明,不平衡的叠层会在整个厚度范围内产生不对称的残余应力,并使零件弯曲。此外,以极高的精度绘制了穿过厚度的残余应力。围绕加工参数进行的实验设计表明,拉速的增加或模具温度的降低会增加零件内的残余应力。

著录项

  • 作者

    Jamiyanaa, Khongor.;

  • 作者单位

    The University of Alabama at Birmingham.;

  • 授予单位 The University of Alabama at Birmingham.;
  • 学科 Engineering Materials Science.;Engineering Mechanical.
  • 学位 M.S.Mt.E.
  • 年度 2014
  • 页码 73 p.
  • 总页数 73
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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