首页> 外文会议>International SAMPE symposium and exhibition;SAMPE 2004 >COMPOSITE LIFE UNDER SUSTAINED COMPRESSION AND ONE SIDED SIMULATED FIRE EXPOSURE: CHARACTERIZATION AND PREDICTION
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COMPOSITE LIFE UNDER SUSTAINED COMPRESSION AND ONE SIDED SIMULATED FIRE EXPOSURE: CHARACTERIZATION AND PREDICTION

机译:持续压缩和一次模拟火灾下的复合寿命:表征和预测

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Polymer matrix composites (PMC’s) perform well under many loading conditions and situations. Exposure of PMC’s to fire is a concern due to their inherent material degradation at elevated temperatures. The elevated temperature response of PMC’s to combined thermal and mechanical loads are especially of concern. Fiber reinforced composite materials exposed to fire conditions exhibit a loss in strength and stiffness due to the dependence of material properties on temperature and time. These effects are reversible if the maximum temperatures reached are below approximately 200 [ºC]. Above 200 [ºC] composite materials experience permanent effects such as mass loss, delamination, charring, and matrix cracking. Little is well-known of the performance of composites exposed to fire and mechanical loads simultaneously. This work focuses on the reversible effects temperature has on laminated composites performance under combined thermal and mechanical loads. Mechanical and thermal testing was conducted on a glass vinyl ester composite in an effort to characterize the at temperature performance of the material. Dynamic Mechanical Analysis was used in an effort to characterize the off axis stiffness reduction as a function of temperature. Two analytical approaches using the temperature dependent off axis stiffness properties were conducted in an effort to predict the mechanical response of composite specimens exposed to a constant heat flux and constant compressive load. Times to failures of samples along with strain profiles were predicted and compared to experimental data. Predicted times to failure are in good agreement with collected data for the higher compressive load cases, while some deviation exists in the predictions at lower applied stress levels.
机译:聚合物基复合材料(PMC)在许多负载条件和情况下均表现良好。由于PMC固有的材料在高温下会降解,因此它们会着火。 PMC对综合热负荷和机械负荷的高温响应尤其令人关注。由于材料特性对温度和时间的依赖性,暴露于火情的纤维增强复合材料表现出强度和刚度的损失。如果达到的最高温度低于大约200 [ºC],则这些影响是可逆的。高于200 [ºC]时,复合材料会遭受永久性影响,例如质量损失,分层,炭化和基体开裂。同时暴露于火和机械载荷下的复合材料的性能鲜为人知。这项工作的重点是在热和机械载荷共同作用下温度对层压复合材料性能的可逆影响。在玻璃乙烯基酯复合材料上进行了机械和热测试,以表征该材料在高温下的性能。使用动态力学分析来表征离轴刚度降低随温度的变化。进行了两种使用取决于温度的离轴刚度特性的分析方法,以预测暴露于恒定热通量和恒定压缩载荷下的复合材料试样的机械响应。预测了样品失效的时间以及应变曲线,并将其与实验数据进行了比较。预测的失效时间与较高压缩载荷情况下的收集数据非常吻合,而在较低的施加应力水平下,预测中存在一些偏差。

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