DOI QR코드

DOI QR Code

PCA-based filtering of temperature effect on impedance monitoring in prestressed tendon anchorage

  • Huynh, Thanh-Canh (Department of Ocean Engineering, Pukyong National University) ;
  • Dang, Ngoc-Loi (Department of Ocean Engineering, Pukyong National University) ;
  • Kim, Jeong-Tae (Department of Ocean Engineering, Pukyong National University)
  • Received : 2017.10.16
  • Accepted : 2018.04.28
  • Published : 2018.07.25

Abstract

For the long-term structural health monitoring of civil structures, the effect of ambient temperature variation has been regarded as one of the critical issues. In this study, a principal component analysis (PCA)-based algorithm is proposed to filter out temperature effects on electromechanical impedance (EMI) monitoring of prestressed tendon anchorages. Firstly, the EMI monitoring via a piezoelectric interface device is described for prestress-loss detection in the tendon anchorage system. Secondly, the PCA-based temperature filtering algorithm tailored to the EMI monitoring of the prestressed tendon anchorage is outlined. The proposed algorithm utilizes the damage-sensitive features obtained from sub-ranges of the EMI data to establish the PCA-based filter model. Finally, the feasibility of the PCA-based algorithm is experimentally evaluated by distinguishing temperature changes from prestress-loss events in a prestressed concrete girder. The accuracy of the prestress-loss detection results is discussed with respect to the EMI features before and after the temperature filtering.

Keywords

Acknowledgement

Supported by : Ministry of Land, Infrastructure and Transport

References

  1. Ayres, J.W., Lalande, F., Chaudhry, Z. and Rogers, C.A. (1998), "Qualitative impedance-based health monitoring of civil infrastructures", Smart Mater. Struct., 7, 599-605. https://doi.org/10.1088/0964-1726/7/5/004
  2. Chaudhry, Z., Joseph, T., Sun, F. and Rogers, C. (1995). "Localarea health monitoring of aircraft via piezoelectric actuator/sensor patches", Smart Structures and Integrated Systems, Proceedings of the SPIE, 2443, San Diego, CA.
  3. Fabricio G.B., Danilo E.B., Vinicius A.D.A. and Jose A.C.U. (2014), "An experimental study on the effect of temperature on piezoelectric sensors for impedance-based structural health monitoring", Sensors, 14, 1208-1227. https://doi.org/10.3390/s140101208
  4. Ho, D.D., Lee, P.Y., Nguyen, K.D., Hong, D.S., Lee, S.Y., Kim, J.T., Shin, S.W., Yun, C.B. and Shinozuka, M. (2012), "Solarpowered multi-scale sensor node on Imote2 platform for hybrid SHM in cable-stayed bridge", Smart Struct. Syst., 9(2), 145-164. https://doi.org/10.12989/sss.2012.9.2.145
  5. Ho, D.D., Ngo, T.M. and Kim, J.T. (2014), "Impedance-based damage monitoring of steel column connection: numerical simulation", Struct. Monit. Maint., 1(3), 339-356. https://doi.org/10.12989/SMM.2014.1.3.339
  6. Ho, D.D., Nguyen, K.D., Yoon, H.S. and Kim, J.T. (2012), "Multiscale acceleration-dynamic strain-impedance sensor system for structural health monitoring", Int. J. Distrib. Sens. N., 2012, 1-17.
  7. Hong, D.S., Nguyen, K.D., Lee, I.C. and Kim, J.T. (2012), "Temperature-compensated damage monitoring by using wireless acceleration-impedance sensor nodes in steel girder connection", Int. J. Distrib. Sens. N., 2012, 1-12.
  8. Hooker, M.W. (1998), "Properties of PZT-based piezoelectric ceramics between-150 and $250^{\circ}C$", Technical Report NASA/CR-1998-208708, NASA, USA
  9. Hu, X., Zhu, H. and Wang, D. (2014), "A study of concrete slab damage detection based on the electromechanical impedance method", Sensors, 14, 19897-19909. https://doi.org/10.3390/s141019897
  10. Huynh, T.C. and Kim, J.T. (2014), "Impedance-based cable force monitoring in tendon-anchorage using portable PZT-interface technique", Math. Probl. Eng., 2014, 1-11.
  11. Huynh, T.C. and Kim, J.T. (2016), "Compensation of temperature effect on impedance responses of PZT interface for prestressloss monitoring in PSC girders", Smart Struct. Syst., 17(6), 881-901. https://doi.org/10.12989/sss.2016.17.6.881
  12. Huynh, T.C. and Kim, J.T. (2017a), "Quantitative damage identification in tendon anchorage via PZT interface-based impedance monitoring technique", Smart Struct. Syst., 20(2), 181-195. https://doi.org/10.12989/SSS.2017.20.2.181
  13. Huynh, T.C. and Kim, J.T. (2017b), "FOS-based prestress force monitoring and temperature effect on unbonded tendon of PSC girder", J. Aerosp. Eng., 30(2), 1-14.
  14. Huynh, T.C. and Kim, J.T. (2018), "RBFN-based temperature compensation method for impedance monitoring in prestressed tendon anchorage", Struct. Control Health Monit., 25(6), e2173. https://doi.org/10.1002/stc.2173
  15. Huynh, T.C., Dang, N.L. and Kim, J.T. (2017), "Advances and challenges in impedance-based structural health monitoring", Struct. Monit. Maint., 4(4), 301-329. https://doi.org/10.12989/SMM.2017.4.4.301
  16. Huynh, T.C., Park, Y.H., Park, J.H., Hong, D.S. and Kim, J.T. (2015a), "Effect of temperature variation on vibration monitoring of prestressed concrete girders", Shock Vib., 2015, 1-9.
  17. Huynh, T.C., Park, Y.H., Park, J.H. and Kim, J.T. (2015b), "Feasibility verification of mountable PZT-interface for impedance monitoring in tendon-anchorage", Shock Vib., 2015, 1-11.
  18. Jlooiffe, I.T. (1986), Principal Component Analysis, Springer, New York.
  19. Johnson, K.L. (1985), Contact Mechanics, Cambridge University Press, Cambridge.
  20. Kim, J.T., Nguyen, K.D. and Huynh, T.C. (2013), "Wireless health monitoring of stay cable using piezoelectric strain response and smart skin technique", Smart Struct. Syst., 12(3-4), 381-397. https://doi.org/10.12989/sss.2013.12.3_4.381
  21. Kim, J.T., Park, J.H., Hong, D.S. and Park, W.S. (2010), "Hybrid health monitoring of prestressed concrete girder bridges by sequential vibration-impedance approaches", Eng. Struct., 32, 115-128. https://doi.org/10.1016/j.engstruct.2009.08.021
  22. Kim, J.T., Huynh, T.C. and Lee, S.Y. (2014), "Wireless structural health monitoring of stay cables under two consecutive typhoons", Struct. Monit. Maint., 1(1), 47-67. https://doi.org/10.12989/SMM.2014.1.1.047
  23. Kim, J.T., Yun, C.B. and Yi, J.H. (2003), "Temperature effects on frequency-based damage detection in plate-girder bridges", J. KSCE, 7(6), 725-733.
  24. Koo, K.Y., Park, S., Lee, J.J. and Yun, C.B. (2009), "Automated impedance-based structural health monitoring incorporating effective frequency shift for compensating temperature effects", J. Intel. Mat. Syst. Str., 20, 367-377. https://doi.org/10.1177/1045389X08088664
  25. Koo, K.Y., Park, S., Lee, J.J. and Yun, C.B. (2008), "Temperature effects-free impedance-based structural health monitoring using principal component analysis", Proceedings of IMAC-XXVI: Conference & Exposition on Structural Dynamics, 1-6.
  26. Liang, C., Sun, F.P. and Rogers, C.A. (1994), "Coupled electromechanical analysis of adaptive material-Determination of the actuator power consumption and system energy transfer", J. Intel. Mat. Syst. Str., 5, 12-20. https://doi.org/10.1177/1045389X9400500102
  27. Lim, H.J., Kim, M.K., Sohn, H. and Park, C.Y. (2011), "Impedance-based damage detection under varying temperature and loading conditions", NDT&E Int., 44, 740-750. https://doi.org/10.1016/j.ndteint.2011.08.003
  28. Mascarenas, D, Todd, M.D., Park, G. and Farrar, C.R. (2007), "Development of an impedance-based wireless sensor node for structural health monitoring", Smart Mater. Struct., 16(6), 2137-2145. https://doi.org/10.1088/0964-1726/16/6/016
  29. Min, J., Shim, H., Yun, C.B. and Hong, J.W. (2016), "An electromechanical impedance-based method for tensile force estimation and damage diagnosis of post-tensioning systems", Smart Struct. Syst., 17(1), 107-122. https://doi.org/10.12989/sss.2016.17.1.107
  30. Min, J., Yi, J.H. and Yun, C.B. (2015), "Electromechanical impedance-based long-term SHM for jacket-type tidal current power plant structure", Smart Struct. Syst., 15(2), 283-297. https://doi.org/10.12989/sss.2015.15.2.283
  31. Nguyen, K.D. and Kim, J.T. (2012), "Smart PZT-interface for wireless impedance-based prestress-loss monitoring in tendonanchorage connection", Smart Struct. Syst., 9(6), 489-504. https://doi.org/10.12989/sss.2012.9.6.489
  32. Nguyen, T.C., Huynh, T.C., Yi, J.H. and Kim, J.T. (2017), "Hybrid bolt-loosening detection in wind turbine tower structures by vibration and impedance responses", Wind Struct., 24(4), 385-403. https://doi.org/10.12989/was.2017.24.4.385
  33. Park, G., Kabeya, K., Cudney, H. and Inman, D. (1999), "Impedance-based structural health monitoring for temperature varying applications", JSME International Journal Series A Solid Mechanics and Material Engineering, 42, 249-258. https://doi.org/10.1299/jsmea.42.249
  34. Park, G., Sohn, H., Farrar, C. and Inman, D. (2003), "Overview of piezoelectric impedance-based health monitoring and path forward", Shock Vib. Digest, 35(6), 451-463. https://doi.org/10.1177/05831024030356001
  35. Park, J.H., Huynh, T.C. and Kim, J.T. (2015), "Temperature effect on wireless impedance monitoring in tendon anchorage of prestressed concrete girder", Smart Struct. Syst., 15(4), 1159-1175. https://doi.org/10.12989/sss.2015.15.4.1159
  36. Park, J.H., Kim, J.T., Hong, D.S., Mascarenas, D. and Lynch, J.P. (2010), "Autonomous smart sensor nodes for global and local damage detection of prestressed concrete bridges based on accelerations and impedance measurements", Smart Struct. Syst., 6(5), 711-730. https://doi.org/10.12989/sss.2010.6.5_6.711
  37. Park, S., Lee, J.J. and Yun, C.B. (2008), "Electro-mechanical impedance-based wireless structural health monitoring using PCA-data compression and k-means clustering algorithms", J. Intel. Mat. Syst. Str., 19(4), 509-520. https://doi.org/10.1177/1045389X07077400
  38. Ryu, J.Y., Huynh, T.C. and Kim, J.T. (2017), "Experimental investigation of magnetic-mount PZT interface for impedancebased damage detection in steel girder connection", Struct. Monit. Maint., 4(3), 237-253. https://doi.org/10.12989/SMM.2017.4.3.237
  39. Sepehry, N., Shamshirsaz, M. and Abdollahi, F. (2011), "Temperature variation effect compensation in impedance-based structural health monitoring using neural networks", J. Intel. Mat. Syst. Str., 20(10), 1-8.
  40. Sim, S.H., Li, J., Jo, H., Park, J.W., Cho, S., Spencer Jr, B.F. and Jung, H.J. (2014), "A wireless smart sensor network for automated monitoring of cable tension", Smart Mater. Struct., 23, 1-10.
  41. Soh, C.K., Tseng, K.K., Bhalla, S. and Gupta, A. (2000), "Performance of smart piezoceramic patches in health monitoring of a RC bridge", Smart Mater. Struct., 9, 533-542. https://doi.org/10.1088/0964-1726/9/4/317
  42. Soh, C.K., Yang, Y. and Bhalla, S. (2012), Smart Materials in Structural Health Monitoring, Control and Biomechanics, Springer-Verlag Berlin Heidelberg
  43. Sohn, H. (2007), "Effects of environmental and operational variability on structural health monitoring", Philosophical Transactions of the Royal Society A, 365, 539-560. https://doi.org/10.1098/rsta.2006.1935
  44. Sun, F.P., Chaudhry Z., Liang, C. and Rogers C.A. (1995), "Truss structure integrity identification using PZT sensor-actuator", J. Intel. Mat. Syst. Str., 6, 134-139. https://doi.org/10.1177/1045389X9500600117
  45. Wang, D., Wang. Q., Wang, H. and Zhu H. (2016), "Experimental study on damage detection in timber specimens based on an electromechanical impedance technique and RMSD-based Mahalanobis distance", Sensors, 1-17.
  46. Woon, C.E. and Mitchell, L.D. (1996), "Variations in structural dynamic characteristics caused by changes in ambient temperature: Part I. Experimental", Proceeding of the 14th IMAC, SEM.
  47. Yang, Y., Annamdas, V.G.M., Wang, C. and Zhou, Y. (2008), "Application of multiplexed FBG and PZT impedance sensors for health monitoring of rocks", Sensors, 8, 271-289. https://doi.org/10.3390/s8010271
  48. Zagrai, A.N. and Giurgiutiu, V. (2001), "Electro-mechanical impedance method for crack detection in thin plates", J. Intel. Mat. Syst. Str., 12, 709-718. https://doi.org/10.1177/104538901320560355
  49. Zahedi, F. and Huang, H. (2017), "Time-frequency analysis of electromechanical impedance (EMI) signature for physics-based damage detections using piezoelectric wafer active sensor (PWAS)", Smart Mater. Struct., 26, 1-9.

Cited by

  1. Modeling, Simulation, Experimentation, and Compensation of Temperature Effect in Impedance-Based SHM Systems Applied to Steel Pipes vol.19, pp.12, 2019, https://doi.org/10.3390/s19122802
  2. Development of Smart Sensing Technology Approaches in Structural Health Monitoring of Bridge Structures vol.2021, pp.None, 2018, https://doi.org/10.1155/2021/2615029