DOI QR코드

DOI QR Code

Development of Structural Health Monitoring System based USN for a Huge Infrastructure

USN 기반의 대형 사회 기반 시설물 계측 시스템 개발

  • Received : 2016.01.06
  • Accepted : 2016.01.19
  • Published : 2016.03.01

Abstract

With due to the recent development of USN (Ubiquitous Sensor Network) technology, a monitoring system has been developing for assuring the structural integrity of infrastructure through normal or long term measurements during their lifetime. An accident such as a collapse of infrastructure may cause not only loss of life but also damage to the economy of the nation. In order to enhance the availability of infrastructure and to be able to maintain their lifetime, it is necessary to monitor and to evaluate continuously the structural integrity throughout their entire lifetime. The purpose of this paper is to develop a monitoring system integrated with evaluation function based on the ubiquitous technology. The most essential part of this study is focusing more on developing a specific module convertible to A/D, which is to enhance the applicability of sensors that had not been applied to existing monitoring systems. Conclusively it has been successfully enhanced to make more diverse the number of sensors and measuring techniques for the monitoring system.

Keywords

References

  1. T. B. Kim, S. K. Seo, D. W. Lee "USN Remote Monitering System for Application of Bridge Measurement", Autumn Conference of the Koesan Society of Safety, KOKOS, pp.211-214, October 15-16, 2008.
  2. Korea Insitute of Construction & Transportation Technology Evaluation and Planning, R&D / 03-A0202, "Intelligent Instrumentation Development Based on Wireless Communication Systems and Efficient Maintenance Management System Application of Grand Bridges", Final Report of Construction Core Technology R & D Project, MOCT, 2006. 10.
  3. Korea Insitute of Construction & Transportation Technology Evaluation and Planning, R&D / 03-A0205, "Development of IT Based Smart Measurement and Monitoring System for Evaluation of Structural Integrity of Bridge", The Final Report of Industry-University-Research Joint Research and Development Projects, MOCT, 2006. 10.
  4. A. Basharat, N. Catbas, M. Shah "A Framework for Intelligent Sensor Network with Video Camera for Structural Health Monitoring of Bridges" Proceedings of Third IEEE International Conference on PerCom, pp. 385-389, 2005.
  5. T. von Eicken, D. E. Culler, S. C. Goldstein, K. E. Schauser, "Active Messages : a Mechanism for Integrated Communication and Computation", 19th International Symposium on Computer Architecture, pp. 256-266, 1992.
  6. Aktan, A.E., Catbas, F.N., Pervizpour, M., Kulcu, E., Grimmelsman, K., Barrish, R., and Qin, X., "Realtime Bridge Health-monitoring for Management," Proceedings of Second Workshop on Advanced Technologies in Urban Earthquake Disaster Mitigation, Kyoto University, pp. 1-14, 2000.
  7. Chung, H., Enomoto, T., Shinozuka, M., "MEMStype Accelerometers and Wireless Communication for Structural Monitoring," Second MIT Conferences on Fluid and Solid Mechanics, Cambridge, MA, pp. 17-20, 2003.
  8. Conte, J.P. et al, "Health Monitoring Framework and Structural Analysis," Proc. of Workshop on Structural Health Monitoring organized by UCSD and Caltrans, pp. 1-21, 2003.
  9. Kim, J-T, "Gui Software System for Damage Identification in Plate-Girder Bridges," KSCE Journal of Civil Engineering vol.6 no.2, pp.107-118 1226-7988 KCI. 2002. 6.
  10. Kim, S.K. and Kim, C.Y., "Bridge Monitoring Systems in Korea," Proceedings of US-Korea Workshop on Smart Infra-Structural Systems, pp.223-232, 2002.
  11. Park, S.H., "Impedance-based Damage Detection for Structures Using smart PZT transducers," Conference of KSCE, pp. 1529-1534, 2003.
  12. Peeters, Bart, and De Roeck, Guido, "One-year monitoring of the Z24-Bridge: environmental effects versus damage events," Earthquake Engineering and Structural Dynamics, Vol. 30, pp.149-171, 2001. https://doi.org/10.1002/1096-9845(200102)30:2<149::AID-EQE1>3.0.CO;2-Z
  13. Sohn, Hoon, Robertson, A.N., and Farrar, C.R., Holder, "Exponent analysis for discontinuity detection," Proceedings of US-Korea Workshop on Smart Infrastructural systems, pp. 23-24, 2002. 9.
  14. M. J. Chae, H. S. Yoo, J. Y. Kim, and M. Y. Cho, "Development of a wireless sensor network system for suspension bridge health monitoring," Automation in Construction, vol. 21, no. 1, pp. 237-252, 2012. https://doi.org/10.1016/j.autcon.2011.06.008
  15. M. Kurata, J. Kim, J. P. Lynch et al., "Internetenabled wireless structural monitoring systems: development and permanent deployment at the new carquinez suspension bridge," Journal of Structural Engineering, vol. 39, no. 10, pp. 1688-1702, 2013.
  16. M. J. Chae, H. S. Yoo, J. Y. Kim, and M. Y. Cho, "Development of a wireless sensor network system for suspension bridge health monitoring," Automation in Construction, vol. 21, no. 1, pp. 237-252, 2012. https://doi.org/10.1016/j.autcon.2011.06.008