DOI QR코드

DOI QR Code

Simulation of PZT monitoring of reinforced concrete beams retrofitted with CFRP

  • Providakis, C.P. (Department of Architectural Engineering, Technical University of Crete) ;
  • Triantafillou, T.C. (Department of Civil Engineering, University of Patras) ;
  • Karabalis, D. (Department of Civil Engineering, University of Patras) ;
  • Papanicolaou, A. (Department of Civil Engineering, University of Patras) ;
  • Stefanaki, K. (Department of Architectural Engineering, Technical University of Crete) ;
  • Tsantilis, A. (Department of Civil Engineering, University of Patras) ;
  • Tzoura, E. (Department of Civil Engineering, University of Patras)
  • Received : 2013.06.17
  • Accepted : 2013.11.09
  • Published : 2014.11.25

Abstract

A numerical study has been carried out to simulate an innovative monitoring procedure to detect and localize damage in reinforced concrete beams retrofitted with carbon fiber reinforced polymer (CFRP) unidirectional laminates. The main novelty of the present simulation is its ability to conduct the electromechanical admittance monitoring technique by considerably compressing the amount of data required for damage detection and localization. A FEM simulation of electromechanical admittance-based sensing technique was employed by applying lead zirconate titanate (PZT) transducers to acquire impedance spectrum signatures. Response surface methodology (RSM) is finally adopted as a tool for solving inverse problems to estimate the location and size of damaged areas from the relationship between damage and electromechanical admittance changes computed at PZT transducer surfaces. This statistical metamodel technique allows polynomial models to be produced without requiring complicated modeling or numerous data sets after the generation of damage, leading to considerably lower cost of creating diagnostic database. Finally, a numerical example is carried out regarding a steel-reinforced concrete (RC) beam model monotonically loaded up to its failure which is also retrofitted by a CFRP laminate to verify the validity of the present metamodeling monitoring technique. The load-carrying capacity of concrete is predicted in the present paper by utilizing an Ottosen-type failure surface in order to better take into account the passive confinement behavior of retrofitted concrete material under the application of FRP laminate.

Keywords

Acknowledgement

Supported by : European Union (European Social Fund-ESF)

References

  1. Akuthota, B., Hughes, D., Zoughi, R., Myers, J. and Nanni, A. (2004), "Near field microwave detection of disbond in fiber reinforced polymer composites used for strengthening concrete structures and disbond repair verification", J. Mater. Civil Eng. - ASCE, 16(6), 540-546. https://doi.org/10.1061/(ASCE)0899-1561(2004)16:6(540)
  2. Bhalla, S. and Soh, C.K. (2003), "Structural impedance damage diagnosis by piezo-transducers", J. Earthq. Eng. Struct. D., 32, 1897-1916. https://doi.org/10.1002/eqe.307
  3. Bhalla, S. and Soh, C.K. (2004b), "Health monitoring by piezo-impedance transducers I: modeling", J. Aerospace Eng., 17, 154-165. https://doi.org/10.1061/(ASCE)0893-1321(2004)17:4(154)
  4. Charles, R.H. and Kennneth, V.T. (1999), Fundamental concepts in the design of experiments, University Press, Oxford.
  5. Cho, T. (2007), "Prediction of cyclic freeze-thaw damage in concrete structures based on response surface method", Constr. Build. Mater., 21(12), 2031-2040. https://doi.org/10.1016/j.conbuildmat.2007.04.018
  6. COMSOL (2011), Ltd, Comsol Multiphysics Modelling 4.2a, www.comsol.com, 2011, Users Guide, London.
  7. Cundy, A.L. (2002), Use of response surface metamodels in damage identification of dynamic structures, Master's Thesis, Virginia Polytechnic Institute and State University.
  8. Giurgiutiu, V., Harries, K.A., Petrou, M.F., Bost, J. and Quattlebaum, J. (2003), "Disbond detection with piezoelectric wafer active sensors in RC structures strengthened with FRP composite overlays", J. Earthq. Eng. Eng. Vib., 2(2), 213-224. https://doi.org/10.1007/s11803-003-0005-9
  9. Halabe, U.B., Vasudevan, A., Klinkhachorn, P. and Gangarao, H.V.S. (2007), "Detection of subsurface defects in fiber reinforced polymer composite bridge decks using infrared thermography", J. Nondestruct. Eval., 22(2-3), 155-175. https://doi.org/10.1080/10589750701448381
  10. Huyer W. and Neumaier A. (2008), "Snobfit-Stable noisy optimization by branch and fit", ACM T. Math. Software, 35(2), doi>10.1145/1377612.1377613.
  11. Kim, S.B., Kim, J.H., Nam, J.W., Kang, S.H. and Byeon, K.J. (2008), "Bond-slip model of interface between CFRP sheets and concrete beams strengthened with CFRP", Korea Concrete Inst., 20(4), 477-486. https://doi.org/10.4334/JKCI.2008.20.4.477
  12. Kim, S.D., In, C.W., Cronin, K.E., Sohn, H. and Harries, K.A. (2007), "A reference-free NDT technique for debonding detection in CFRP strengthened RC structures", J. Struct. Eng. - ASCE, 8, 1080-1091.
  13. Liang, C., Sun, F.P. and Rogers, C.A. (1994), "Coupled electro-mechanical analysis of adaptive material systems determination of the actuator power consumption and system energy transfer", J. Intel. Mat. Syst. Str., 5(1), 15-20.
  14. MATLAB, The Mathworks Inc. U.S. (2012), www.mathworks.com., 2012, Users Guide.
  15. Mohcene Boukhezar, Mohamed Laid Samai, Habib Abelhak Mesbah and Hacene Houari (2013), "Flexural behaviour of Reinforced low-strength Concrete Beams strengthened with CFRP plates", Struct. Eng. Mech., 47(6), -819-838. https://doi.org/10.12989/sem.2013.47.6.819
  16. Myers, R.H. and Montgomery, D.C. (1995), Response Surface Methodology, John Wiley and Sons, Inc., New York, NY.
  17. Nokes, T.R. and Hawkins, G.F. (2001), Infrared inspection of composite reinforced structures, Ohio DOT, OH, 2001: http://www.dot.state.oh.us/reserach/2001/Structures/14688-FR.pdf
  18. Oehlers, D.J. (2006), "Ductility of FRP plated flexural members", Cement Concrete Compos., 28(10), 898-905. https://doi.org/10.1016/j.cemconcomp.2006.07.006
  19. Park, S., Kim, JW., Lee, C.G. and Park, S.K. (2011), "Impedance-based wireless debonding condition monitoring of CFRP laminated concrete structures", NDT&E Int., 44, (232-238). https://doi.org/10.1016/j.ndteint.2010.10.006
  20. Providakis, C.P., Stefanaki, K.D, Voutetaki, M., Tsompanakis, J. and Stavroulaki, M. (2013), "Damage detection in concrete structures using a simultaneously activated multi-mode PZT active sensing system", Struct. Infrastruct. E., (submitted).
  21. Raju, V. (1997), Implementing impedance-based health monitoring, MSc thesis, Virginia Polytechnic Institute, Blacksburg, Virginia, USA.
  22. Rutherford, B.M., Swiler, L.P., Paez, T.L. and Urbina, A. (2006), "Resposne surface (meta-model) methods and applications", Proceedings of the24th Int. Modal Analysis Conf., St. Louis.
  23. Shih, J.K.C., Tann, D.B., Hu, C.W., Delapk, R. and Andreou, E. (2003), "Remote sensing of air blisters in concrete-FRP bond layer using IR thermography", Int. J. Mater. Prod. Tec., 19(1-2), 174-187. https://doi.org/10.1504/IJMPT.2003.003545
  24. Stephen, V., Kharkovsky, S., Nadakuduti, J. and Zoughi, R. (2004), "Microwave field measurement of delaminations in CFRP concrete members in a bridge", Proceedings of the Worls Conference on Nondestructive Testing (WCNDT), Montreal, Canada.

Cited by

  1. Non-contact damage monitoring technique for FRP laminates using guided waves vol.17, pp.5, 2016, https://doi.org/10.12989/sss.2016.17.5.795
  2. Experimental damage evaluation of reinforced concrete steel bars using piezoelectric sensors vol.105, 2016, https://doi.org/10.1016/j.conbuildmat.2015.12.019
  3. Damage Evaluation in Shear-Critical Reinforced Concrete Beam using Piezoelectric Transducers as Smart Aggregates vol.5, pp.1, 2015, https://doi.org/10.1515/eng-2015-0046
  4. Experimental and Numerical Studies of Debonding Monitoring of FRP Shear-Strengthened Beams Using EMI Technique vol.31, pp.5, 2018, https://doi.org/10.1061/(ASCE)AS.1943-5525.0000876
  5. An EMI-Based Clustering for Structural Health Monitoring of NSM FRP Strengthening Systems vol.19, pp.17, 2014, https://doi.org/10.3390/s19173775
  6. Assessment of porosity influence on dynamic characteristics of smart heterogeneous magneto-electro-elastic plates vol.72, pp.1, 2019, https://doi.org/10.12989/sem.2019.72.1.113