Continuous coaxial cable sensors for monitoring of RC structures with electrical time domain reflectometry

被引:3
|
作者
Chen, G [1 ]
Mu, HM [1 ]
Pommerenke, D [1 ]
Drewniak, JL [1 ]
机构
[1] Univ Missouri, Dept Civil Engn, Rolla, MO 65409 USA
关键词
coaxial cables; continuous sensors; electrical time domain reflectometry; strain sensors; crack sensors; reflection coefficient;
D O I
10.1117/12.482687
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This study was aimed at developing and validating a new type of coaxial cable sensors that can be used to detect cracks or measure strains in reinforced concrete (RC) structures. The new sensors were designed based on the change in outer conductor configuration under strain effects in contrast to the geometry-based design in conventional coaxial cable sensors. Both numerical simulations and calibration tests with strain gauges of a specific design of the proposed cables were conducted to study the cables' sensitivity. Four designs of the proposed type of sensors were then respectively mounted near the surface of six 3-foot-long RC beams. They were tested in bending to further validate the cables' sensitivity in concrete members. The calibration test results generally agree with the numerical simulations. They showed that the proposed sensors are over 10similar to50 times more sensitive than conventional cable sensors. The test results of the beams not only validate the sensitivity of the new sensors but also indicate a good correlation with the measured crack width.
引用
收藏
页码:410 / 421
页数:12
相关论文
共 50 条
  • [31] Coaxial cable bragg grating sensors for structural health monitoring
    Xiao, H. (xiaoha@mst.edu), 1600, Chinese Society of Pavement Engineering (05):
  • [32] DETERMINATION OF ELECTRICAL-CONDUCTIVITY USING TIME DOMAIN REFLECTOMETRY - SOIL AND WATER EXPERIMENTS IN COAXIAL LINES
    TOPP, GC
    YANUKA, M
    ZEBCHUK, WD
    ZEGELIN, S
    WATER RESOURCES RESEARCH, 1988, 24 (07) : 945 - 952
  • [33] Characterization of Electrical Properties by Time Domain Reflectometry
    Lin, Chih-Ping
    Lin, Chun-Hun
    Chung, Chih-Chung
    Liu, Hsin-Chan
    NEAR-SURFACE GEOPHYSICS AND GEOHAZARDS, 2014, : 28 - 34
  • [34] Effect of Measurement Temperature on Electrical Cable Frequency Domain Reflectometry Response
    Spencer, Mychal P.
    Sriraman, Aishwarya
    Prowant, Matthew
    Glass, Samuel W.
    Fifield, Leonard S.
    2023 IEEE CONFERENCE ON ELECTRICAL INSULATION AND DIELECTRIC PHENOMENA, CEIDP, 2023,
  • [35] Monitoring Electrical Conductivity and Nitrate Concentrations in an Andisol Field Using Time Domain Reflectometry
    Miyamoto, Teruhito
    Kameyama, Koji
    Iwata, Yukiyoshi
    JARQ-JAPAN AGRICULTURAL RESEARCH QUARTERLY, 2015, 49 (03): : 261 - 267
  • [36] Use of time domain reflectometry for continuous monitoring of nitrate-nitrogen in soil and water
    Payero, J. O.
    Tarkalson, D. D.
    Irmak, S.
    APPLIED ENGINEERING IN AGRICULTURE, 2006, 22 (05) : 689 - 700
  • [37] Novel distributed cable sensors for detection of cracks in RC structures
    Chen, GD
    Pommerenke, D
    REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, VOLS 25A AND 25B, 2006, 820 : 1343 - 1350
  • [38] Time-domain-reflectometry cure monitoring
    Hager, N
    Domszy, R
    2001: A MATERIALS AND PROCESSES ODYSSEY, BOOKS 1 AND 2, 2001, 46 : 2252 - 2263
  • [39] Cable Length Measurement Systems Based on Time Domain Reflectometry
    Song, Jianhui
    Yu, Yang
    Gao, Hongwei
    ADVANCES IN COMPUTER SCIENCE, ENVIRONMENT, ECOINFORMATICS, AND EDUCATION, PT I, 2011, 214 : 396 - 401
  • [40] Abnormality Monitoring for Three-Phase HTS Cable via Time-Frequency Domain Reflectometry
    Bang, Su Sik
    Shin, Yong-June
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2021, 31 (05)