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用于自传感应用的再生碳纤维增强聚合物复合材料的力学和压阻传感性能实验研究

Experimental Investigation into the Mechanical and Piezoresistive Sensing Properties of Recycled Carbon-Fiber-Reinforced Polymer Composites for Self-Sensing Applications.

作者信息

Kim Bum-Jun, Nam Il-Woo

机构信息

Spatial Design and Engineering, Handong Global University, Pohang-si 37554, Republic of Korea.

School of Spatial Environment System Engineering, Handong Global University, Pohang-si 37554, Republic of Korea.

出版信息

Polymers (Basel). 2024 Aug 31;16(17):2491. doi: 10.3390/polym16172491.

Abstract

This study investigates the mechanical and piezoresistive sensing properties of recycled carbon-fiber-reinforced polymer composites (rCFRPs) for self-sensing applications, which were prepared from recycled carbon fibers (rCFs) with fiber lengths of 6, 12, 18, and 24 mm using a vacuum infusion method. Mechanical properties of the rCFRPs were examined using uniaxial tensile tests, while sensing characteristics were examined by monitoring the in situ electrical resistance under cyclic and low fatigue loads. Longer fibers (24 mm) showed the superior tensile strength (92.6 MPa) and modulus (8.4 GPa), with improvements of 962.1% and 1061.1%, respectively. Shorter fibers (6 mm) demonstrated enhanced sensing capabilities with the highest sensitivity under low fatigue testing (1000 cycles at 10 MPa), showing an average maximum electrical resistance change rate of 0.7315% and a gauge factor of 4.5876. All the composites displayed a stable electrical response under cyclic and low fatigue loadings. These results provide insights into optimizing rCF incorporation, balancing structural integrity with self-sensing capabilities and contributing to the development of sustainable multifunctional materials.

摘要

本研究调查了用于自传感应用的回收碳纤维增强聚合物复合材料(rCFRP)的力学和压阻传感特性,这些复合材料是使用真空灌注法由长度为6、12、18和24毫米的回收碳纤维(rCF)制备而成。通过单轴拉伸试验检测rCFRP的力学性能,同时通过监测循环和低疲劳载荷下的原位电阻来检测传感特性。较长的纤维(24毫米)表现出优异的拉伸强度(92.6兆帕)和模量(8.4吉帕),分别提高了962.1%和1061.1%。较短的纤维(6毫米)在低疲劳测试(10兆帕下1000次循环)中表现出增强的传感能力和最高灵敏度,平均最大电阻变化率为0.7315%,应变片系数为4.5876。所有复合材料在循环和低疲劳载荷下均表现出稳定的电响应。这些结果为优化rCF掺入、平衡结构完整性与自传感能力以及促进可持续多功能材料的发展提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7052/11397957/4017e3ef1125/polymers-16-02491-g001.jpg

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