材料科学
压阻效应
复合材料
电阻和电导
硅粉
有限元法
黄铜
电阻率和电导率
压缩(物理)
混凝土性能
智能材料
水泥
结构工程
冶金
铜
工程类
电气工程
作者
Aurore Mugisha,Egemen Teomete
标识
DOI:10.12989/cac.2019.23.6.399
摘要
Structural health monitoring is important for the safety of lives and asset management. In this study, numerical
models were developed for the piezoresistive behavior of smart concrete based on finite element (FE) method. Finite element models were calibrated with experimental data collected from compression test. The compression test was performed on smart concrete cube specimens with 75 mm dimensions. Smart concrete was made of cement CEM II 42.5 R, silica fume, fine and coarse crushed limestone aggregates, brass fibers and plasticizer. During the compression test, electrical resistance change and
compressive strain measurements were conducted simultaneously. Smart concrete had a strong linear relationship between strain and electrical resistance change due to its piezoresistive function. The piezoresistivity of the smart concrete was modeled by FE
method. Twenty-noded solid brick elements were used to model the smart concrete specimens in the finite element platform of Ansys. The numerical results were determined for strain induced resistivity change. The electrical resistivity of simulated smart concrete decreased with applied strain, as found in experimental investigation. The numerical findings are in good agreement with the experimental results.
科研通智能强力驱动
Strongly Powered by AbleSci AI