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In-situ elevated temperature flexural and creep response of inter-ply glass/carbon hybrid FRP composites

机译:层间玻璃/碳混杂FRP复合材料的原位高温弯曲和蠕变响应

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摘要

Inter-ply fiber hybridization is a promising technique for tailoring the mechanical properties of FRP composites. But the durability of these composites under combined exposure to thermal and flexural loading is still unexplored. In this study, the effect of temperature on the flexural and creep performance of glass/epoxy (GE), carbon/epoxy (CE) and glass/carbon/epoxy (GCE) hybrid composites has been studied. Replacing 2 GE plies at each side (top and bottom) by equal number of CE plies in a 7 layered composite resulted 83% and 112% improvement in strength and modulus respectively at room temperature. With increase in temperature, both strength and stiffness of all the composites continued to decrease upto the highest testing temperature (110 degrees C). Interestingly, it was noticed that composites containing more number of CE plies degrade at a faster rate, but still a positive hybrid effect in terms of strength and stiffness was noticed upto a temperature of 90 degrees C. The dominating failure mechanisms were analysed from their micrographs for different composites at different testing temperatures. The dynamic mechanical thermal analysis of all the materials was studied in the temperature range of 40 - 200 degrees C. The creep study at elevated temperature indicates the synergetic effect of both glass and carbon fibers in the hybrid composite. (C) 2016 Elsevier Ltd. All rights reserved.
机译:层间纤维杂交是定制FRP复合材料机械性能的有前途的技术。但是,这些复合材料在热和弯曲载荷共同作用下的耐久性仍未得到开发。在这项研究中,研究了温度对玻璃/环氧树脂(GE),碳/环氧树脂(CE)和玻璃/碳/环氧树脂(GCE)混合复合材料的弯曲和蠕变性能的影响。在室温下,在7层复合材料的每一侧(顶部和底部)用相等数量的CE层替换2个GE层,分别在强度和模量上分别提高了83%和112%。随着温度的升高,所有复合材料的强度和刚度都持续下降,直至达到最高测试温度(110摄氏度)。有趣的是,注意到包含更多数量的CE层的复合材料以更快的速度降解,但是在高达90摄氏度的温度下仍观察到强度和刚度方面的积极混合效应。从其显微照片分析了主要的破坏机理在不同的测试温度下用于不同的复合材料。在40-200摄氏度的温度范围内研究了所有材料的动态机械热分析。在高温下的蠕变研究表明玻璃纤维和碳纤维在混合复合材料中的协同作用。 (C)2016 Elsevier Ltd.保留所有权利。

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