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Investigations on micro-mechanical and thermal characteristics of glass fiber reinforced epoxy based binary composite structure using finite element method

机译:有限元法研究玻璃纤维增​​强环氧树脂基二元复合结构的微机械和热特性

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Binary composite materials comprising of randomly oriented E-glass fiber of four different weight percentages impregnated with epoxy resin are fabricated to study their physical, mechanical and thermal properties. The experimental results are used for the validation of the results obtained by simulation using ANSYS software. The finite element (FE) model based on representative area element (RAE) approach is implemented in the finite element code ANSYS. The comparative analysis gives an acceptable error, indicating applicability of such simulation model studies in predicting material characteristics in advance. The elastic modulus evaluated both by Halpin-Tsai model and FE model are more close to experimental results as compared to the results obtained from rule-of-mixture. Similarly, the tensile strength of the composites evaluated both experimentally and by finite element method (FEM) shows close resemblance. An empirical relationship has been developed and reported for the calculation of effective thermal conductivity for two-phase composite system (i.e. fiber and matrix interface). It is observed that the order of composites with effective thermal conductivity is 45 wt.% glass fiber based composite >35 wt.% glass fiber based composite >25 wt.% glass fiber based composite >15 wt.% glass fiber based composite. The magnitude increases slightly in case of 45 wt.% glass fiber based composite, whereas it remains almost constant in case of 35 wt.% and shows slightly decrease in case of 25 wt.% and 15 wt.% glass fiber based composites. This facilitates designing/tailoring of composite materials as per structural requirements in the preliminary stages of R&D more economically.
机译:制造了由四种不同重量百分比的环氧树脂浸渍的无规取向电子玻璃纤维组成的二元复合材料,以研究其物理,机械和热性能。实验结果用于验证使用ANSYS软件进行仿真得到的结果。在有限元代码ANSYS中实现了基于代表性区域元素(RAE)方法的有限元(FE)模型。比较分析给出了可以接受的误差,表明这种模拟模型研究在预先预测材料特性中的适用性。与通过混合规则获得的结果相比,通过Halpin-Tsai模型和FE模型评估的弹性模量更接近于实验结果。类似地,通过实验和通过有限元方法(FEM)评估的复合材料的拉伸强度都非常相似。已开发并报告了一种经验关系,用于计算两相复合系统(即纤维和基体界面)的有效导热系数。观察到,具有有效导热性的复合材料的顺序为:45wt。%的玻璃纤维基复合材料> 35wt。%的玻璃纤维基复合材料> 25wt。%的玻璃纤维基复合材料> 15wt。%的玻璃纤维基复合材料。在45重量%的玻璃纤维基复合材料的情况下,其量值略有增加,而在35重量%的玻璃纤维基复合材料的情况下,其量值几乎保持恒定,而在25重量%和15重量%的玻璃纤维基复合物的情况下,其量值显示略有减小。这样可以更经济地在研发的初期阶段根据结构要求设计/定制复合材料。

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