考虑应变率对组成材料力学性能影响的单向纤维增强塑料抗压强度预测

N. Inoue, N. Taniguchi, T. Nishiwaki, N. Hirayama, K. Nakamura, Y. Arao, H. Kawada
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引用次数: 0

摘要

本研究提出了一种预测单向FRP抗压强度的分析模型。该模型考虑了应变速率依赖对组成材料力学性能的影响。该模型是基于弹性地基模型和纤维在基体中具有初始错位的微屈曲模型。将单向FRP的压缩变形分为纤维微屈曲区和塑性扭结区。此外,为了考虑纤维体积分数或纤维微屈曲引起的压缩变形模态变化,引入了A模态函数。将该模型的预测结果与单向e玻璃/环氧树脂和T700SC/环氧树脂的实验结果进行了比较。结合复合材料混合规律计算的应变率与钢筋抗压模量的关系,预测结果与应变率与抗压强度的关系实验结果吻合较好。通过改变模态函数来提高预测精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Prediction of Compressive Strength for Unidirectional Fiber Reinforced Plastics in Considering Effect of Strain-Rate Dependency on Mechanical Properties of Constituent Materials
This study presents an analytical model to predict compressive strength of unidirectional FRP. Proposed model considers the effect of strain-rate dependency on mechanical properties of constituent materials. The model is based on the elastic foundation model and the microbuckling model of fiber which has initial misalignment in matrix. Compressive deformation of unidirectional FRP is considered by dividing into fiber microbuckling region and plastic kinking region. Additionally, to take into consideration the change in compressive deformation mode accompanying fiber volume fraction or fiber microbuckling, A mode function is introduced. The predictions from the proposed model are compared with experimental results of unidirectional E-glass/Epoxy and T700SC/Epoxy evaluated by using the conventional split Hopkinson pressure bar method. Incorporating strain-rate dependency on compressive modulus of reinforcement calculated from composite mixture law, the predictions are found to be in good agreement with experimental results of strain-rate dependency on compressive strength. Accuracy of the prediction is improved by changing the mode function.
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