Title :
Optical Fiber Bragg grating based intrusion detection systems for homeland security
Author :
Allwood, G. ; Hinckley, S. ; Wild, G.
Author_Institution :
Centre for Commun. Eng. Res., Edith Cowan Univ., Joondalup, WA, Australia
Abstract :
This paper describes the use of optical Fiber Bragg grating (FBG) sensors for use in various intrusion detection systems for homeland security. We show that a FBG sensor can be used effectively as an embedded in-ground acoustic sensor, sensitive enough to detect the acoustic emissions associated with walking on a concrete surface. Also, the FBG can be used as an in-ground pressure switch for intrusion detection through temporary flooring materials, such as tiles and wooden laminate. In addition, we verify the use of FBGs as in-fence perimeter breach detectors. Finally, we show how an FBG can be used as a reed switch for use in intrusion detection systems for doors and windows. The combination of the different intrusion detection techniques illustrate the versatility of FBGs in security applications, showing this single technology can be used to form a complete intrusion detection system for homeland security. Furthermore the paper details the progress made towards a real-time in-ground sensor network for advanced security applications.
Keywords :
Bragg gratings; acoustic emission; fibre optic sensors; national security; reed relays; safety systems; FBG sensor; acoustic emissions; advanced security applications; concrete surface; embedded in-ground acoustic sensor; homeland security; in-fence perimeter breach detectors; in-ground pressure switch; optical fiber Bragg grating based intrusion detection systems; optical fiber Bragg grating sensors; real-time in-ground sensor network; reed switch; temporary flooring materials; tiles; wooden laminate; Fiber gratings; Optical fiber sensors; Optical fibers; Optical switches; fiber Bragg grating; in-ground; intrusion detection; pressure switch; reed switch;
Conference_Titel :
Sensors Applications Symposium (SAS), 2013 IEEE
Conference_Location :
Galveston, TX
Print_ISBN :
978-1-4673-4636-8
DOI :
10.1109/SAS.2013.6493558