4.7 Article

Sensitivity Modeling of an RFID-Based Strain-Sensing Antenna With Dielectric Constant Change

Journal

IEEE SENSORS JOURNAL
Volume 15, Issue 11, Pages 6147-6155

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JSEN.2015.2453947

Keywords

Folded patch antenna; RFID sensor; structural health monitoring; smart skin; dielectric constant change; antenna sensor; wireless sensor; strain sensing

Funding

  1. Division of Electrical, Communications and Cyber Systems through the National Science Foundation [ECCS 1307762]
  2. Air Force Office of Scientific Research [FA9550-14-1-0054]
  3. Federal Highway Administration [DTFH61-10-H-00004]

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An radiofrequency identification (RFID)-based folded patch antenna has been developed as a novel passive wireless sensor to measure surface strain and crack, for the structural health monitoring of metallic structures. Up to 2.5 m of read range is achieved by a proof-of-concept prototype patch antenna sensor with a strain sensitivity around -760 Hz/mu epsilon, which is equivalent to a normalized strain sensitivity of -0.74 ppm/mu epsilon. In this paper, we propose to consider the change of the substrate dielectric constant due to strain when modeling the antenna sensor. An enhanced strain sensitivity model is introduced for more accurately estimating the strain sensing performance of the hereby introduced smart skin antenna sensor. Laboratory experiments are carried out to quantify the dielectric constant change under strain. The measurement results are incorporated into a mechanics-electromagnetics coupled simulation model. Accuracy of the multi-physics coupled simulation is improved by integrating dielectric constant change in the model.

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