Chen Huihui, Xu Ning, Jiang Peng, Jiang Linhua
School of Civil Engineering, Yancheng Institute of Technology, Yancheng 224051, China.
Nanjing Hydraulic Research Institute, Nanjing 210024, China.
Materials (Basel). 2023 Jan 16;16(2):855. doi: 10.3390/ma16020855.
Graphene can effectively improve the mechanical and electrical properties of cement-based materials due to its excellent tensile strength, thermal conductivity and electrical conductivity. In this paper, the effects of freeze-thaw on the conductivity and sensing properties of graphene-based cement materials were investigated. After the preparation of graphene-based cement materials, they were subjected to different times of freeze-thaw action. The experiments were designed to analyze the influence of freeze-thaw on the electrical conductivity, humidity sensitivity, thermosensitivity and pressure sensitivity of graphene-based cement composites. The results show that the influence of freeze-thaw on the electrical conductivity of graphene is mainly manifested in the influence on the resistivity and the extension of the polarization time, and the influence on the percolation transition zone is small. After freeze-thaw, the polarization time of the specimen decreases with the increase of the relative water content. The temperature has a great influence on the polarization effect of graphene-based cement composites and the composites with graphene content of the zone B still show satisfactory pressure-sensitive property after freeze-thaw.
由于石墨烯具有优异的拉伸强度、导热性和导电性,它能够有效改善水泥基材料的力学和电学性能。本文研究了冻融对石墨烯基水泥材料导电性和传感性能的影响。制备石墨烯基水泥材料后,使其经受不同次数的冻融作用。实验旨在分析冻融对石墨烯基水泥复合材料的导电性、湿度敏感性、热敏感性和压力敏感性的影响。结果表明,冻融对石墨烯导电性的影响主要体现在对电阻率的影响以及极化时间的延长上,对渗流过渡区的影响较小。冻融后,试样的极化时间随相对含水量的增加而减小。温度对石墨烯基水泥复合材料的极化效应有很大影响,且B区含石墨烯的复合材料冻融后仍表现出令人满意的压敏性能。