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Optimisation des parametres de mise en oeuvre dans une filiere de pultrusion (French and English text).

机译:优化拉挤成型部门的实施参数(法语和英语)。

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摘要

The aim of the present work is to optimise the governing parameters during pultrusion of fibre reinforced thermoset resins. This process is used with a variety of resin and fibre reinforcement to produce profiles ranging from simple to complex structural parts. In a pultrusion machine, the heated die is regarded as the heart of the process where the majority of the phenomenons leading to the resin-fibre consolidation took place. This consolidation results from the resin's morphological changes which generate pressure and resisting forces. From this consideration, the present work deals mainly with the study of thermal and chemical phenomenons occurring inside the pultruder die in order to control and expand the process knowledge.; The first aspect treated in this work concerns the cure kinetics of thermoset resins used in pultrusion process. From the results found in this part of the study, it is shown that the exothermic heat evolved during the cure reaction is completely independent from the heating rate of the dynamic run and the temperature of isothermal run. Consequently, this amount of heat is considered as an intrinsic property of a given resin formulation. The proposed method can be easily generalized to non-uniform time-temperature profiles as in the case of pultrusion process.; The cure kinetics was then used to study the temperature and conversion profiles of pultruded composites inside the die. Thermal and chemical phenomenons were expressed by appropriate three dimensional energy balance equation including transient, conduction and heat source terms. The numerical program is also tested by investigating the effect of pulling speed. In this case, the results show clearly that temperature gradient is more pronounced for slow pulling speed while the peak temperature increases and shifts toward the die exit with increasing pulling speed. These remarks are related to the residence time and rate of cure depending on the pulling speed and affecting by the way the progress of thermal and chemical phenomenons.; The last treated subject in this thesis concerns the size and location of the liquid, gelatinous and solid zones of the resin during the cure process inside the die. The obtained contour delimiting the liquid and gelatinous zones has a parabolic form and shows that the cure increases from the interface between the material and the die to the material centerline. Unlike this, the gel/solid contour has a complex geometrical form leading to a fast cure for the interface and the centerline than the remaining points on the material section. Moreover, increasing the pulling speed has a significant effect especially on the size of the liquid zone. (Abstract shortened by UMI.)
机译:本工作的目的是在纤维增强热固性树脂拉挤过程中优化控制参数。此过程与各种树脂和纤维增强材料一起使用,以产生从简单到复杂结构零件的轮廓。在拉挤成型机中,加热模具被认为是过程的心脏,其中导致树脂纤维固结的大多数现象都发生了。这种固结归因于树脂的形貌变化,该形变产生压力和阻力。基于这一考虑,本工作主要研究拉挤模具内发生的热和化学现象,以控制和扩展工艺知识。在这项工作中处理的第一方面涉及在拉挤成型工艺中使用的热固性树脂的固化动力学。从研究的这一部分中发现的结果表明,在固化反应过程中放出的放热完全与动态运行的加热速率和等温运行的温度无关。因此,该热量被认为是给定树脂配方的固有特性。与拉挤成型工艺一样,该方法可以很容易地推广到非均匀的时间-温度曲线。然后将固化动力学用于研究模具内部拉挤复合材料的温度和转化率曲线。通过适当的三维能量平衡方程(包括瞬态,传导和热源项)来表达热和化学现象。还通过研究拉速的影响来测试数值程序。在这种情况下,结果清楚地表明,温度梯度对于缓慢的提拉速度更为明显,而峰值温度则随着提拉速度的增加而增加并向模具出口移动。这些评论与停留时间和固化速率有关,取决于拉速和热化学现象的发展方式。本论文中最后被治疗的对象涉及模具内固化过程中树脂的液体,凝胶状和固体区域的大小和位置。所获得的界定液体和凝胶区的轮廓具有抛物线形式,并且显示出固化从材料和模具之间的界面到材料中心线增加。与此不同的是,凝胶/固体轮廓具有复杂的几何形状,因此与材料部分上的其余点相比,可快速固化界面和中心线。此外,提高提拉速度尤其对液体区域的尺寸具有显着影响。 (摘要由UMI缩短。)

著录项

  • 作者

    Atarsia, Abdelatif.;

  • 作者单位

    Ecole Polytechnique, Montreal (Canada).;

  • 授予单位 Ecole Polytechnique, Montreal (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 212 p.
  • 总页数 212
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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