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A model for the structural integrity of composite laminates in fire

机译:火灾中复合材料层合板结构完整性的模型

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摘要

This thesis describes a model for the integrity of composite laminates in fire. The model was based on laminate theory analysis and a one dimensional heat transfer model, and was validated for three materials; glass reinforced polyester, glass reinforced vinyl ester and glass reinforced polypropylene. A small-scale fire resistance test, based on a simple burner, is also described. A propane burner was used to produce a constant heat flux for testing composite laminates. The thermal response was measured at the rear face of the sample in a 50kW/m2 fire. A one dimensional thermal model was used to make predictions of the temperature profile and residual resin content through the material’s cross-section. The measured thermal response was then used to validate these predictions. Fire tests were also conducted on small-scale samples under a constant load. The samples were loaded in either tension or compression and then exposed to a 50kW/m2 heat flux, provided by the propane burner. The time to failure was recorded and used to validate the laminate failure model predictions. Very little work had been conducted on the fire testing of loaded composites prior to this research. Temperature dependent material properties were measured for each material. An empirical relationship was used to describe the variation of flexural modulus, tensile strength and compressive strength from room temperature, through the glass transition temperature and up to 400°C. Ply constitutive equations were constructed using the predicted temperature and resin content profiles, and the temperature dependent material property information. These equations provided input for the laminate analysis model. Predictions are presented for the variation of the laminate A, B and D matrices in a 50kW/m2 fire. The model produced very accurate strength predictions for all three laminate systems, and would therefore be a useful tool for the initial stages of composite structure design.
机译:本文描述了一种复合材料在火灾中的完整性模型。该模型基于层压板理论分析和一维传热模型,并针对三种材料进行了验证。玻璃纤维增​​强聚酯,玻璃纤维增​​强乙烯基酯和玻璃纤维增​​强聚丙烯。还描述了基于简单燃烧器的小规模耐火性测试。丙烷燃烧器用于产生恒定的热通量,以测试复合材料层压板。在50kW / m2的火焰中,在样品的背面测量了热响应。一维热模型用于预测材料截面中的温度曲线和残留树脂含量。然后,将测得的热响应用于验证这些预测。还对恒定负载下的小规模样品进行了燃烧测试。样品以拉伸或压缩方式加载,然后暴露于丙烷燃烧器提供的50kW / m2热通量。记录失效时间,并将其用于验证层压板失效模型的预测。在进行这项研究之前,很少进行负载复合材料的耐火测试。测量每种材料的温度相关材料性能。使用经验关系来描述挠曲模量,抗张强度和抗压强度从室温到玻璃化转变温度直至400°C的变化。使用预测的温度和树脂含量曲线以及与温度相关的材料属性信息来构造层本构方程。这些方程式为层压板分析模型提供了输入。给出了在50kW / m2火灾中层压板A,B和D矩阵变化的预测。该模型对所有三个层压系统产生了非常准确的强度预测,因此对于复合结构设计的初始阶段将是一个有用的工具。

著录项

  • 作者

    Browne Thomas Naoise Alan;

  • 作者单位
  • 年度 2006
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
  • 中图分类

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