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碳纤维增强聚合物在模拟孔隙溶液中的双重功能行为

Dual Function Behavior of Carbon Fiber-Reinforced Polymer in Simulated Pore Solution.

作者信息

Zhu Ji-Hua, Guo Guanping, Wei Liangliang, Zhu Miaochang, Chen Xianchuan

机构信息

Guangdong Province Key Laboratory of Durability for Marine Civil Engineering, School of Civil Engineering, Shenzhen University, Shenzhen 518060, Guangdong, China.

出版信息

Materials (Basel). 2016 Feb 6;9(2):103. doi: 10.3390/ma9020103.

Abstract

The mechanical and electrochemical performance of carbon fiber-reinforced polymer (CFRP) were investigated regarding a novel improvement in the load-carrying capacity and durability of reinforced concrete structures by adopting CFRP as both a structural strengthener and an anode of the impressed current cathodic protection (ICCP) system. The mechanical and anode performance of CFRP were investigated in an aqueous pore solution in which the electrolytes were available to the anode in a cured concrete structure. Accelerated polarization tests were designed with different test durations and various levels of applied currents in accordance with the international standard. The CFRP specimens were mechanically characterized after polarization. The measured feeding voltage and potential during the test period indicates CFRP have stable anode performance in a simulated pore solution. Two failure modes were observed through tensile testing. The tensile properties of the post-polarization CFRP specimens declined with an increased charge density. The CFRP demonstrated success as a structural strengthener and ICCP anode. We propose a mathematic model predicting the tensile strengths of CFRP with varied impressed charge densities.

摘要

通过将碳纤维增强聚合物(CFRP)既用作结构增强材料又用作外加电流阴极保护(ICCP)系统的阳极,研究了其在提高钢筋混凝土结构承载能力和耐久性方面的新进展,考察了CFRP的力学性能和电化学性能。在一种孔隙水溶液中研究了CFRP的力学性能和阳极性能,在这种溶液中,电解质可进入固化混凝土结构中的阳极。根据国际标准,设计了不同试验持续时间和不同施加电流水平的加速极化试验。极化后对CFRP试样进行力学表征。试验期间测得的馈电电压和电位表明,CFRP在模拟孔隙溶液中具有稳定的阳极性能。通过拉伸试验观察到两种破坏模式。极化后CFRP试样的拉伸性能随电荷密度的增加而下降。CFRP作为结构增强材料和ICCP阳极取得了成功。我们提出了一个数学模型来预测不同外加电荷密度下CFRP的拉伸强度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a54/5456487/cff7b8d2391f/materials-09-00103-g001.jpg

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