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Analysis of decimation techniques to improve computational efficiency of a frequency-domain evaluation approach for real-time hybrid simulation

  • Guo, Tong (Key Laboratory of Concrete and Prestressed Concrete Structures of the Ministry of Education, Southeast University) ;
  • Xu, Weijie (School of Civil Engineering, Southeast University) ;
  • Chen, Cheng (School of Engineering, San Francisco State University)
  • Received : 2014.04.10
  • Accepted : 2014.08.20
  • Published : 2014.12.25

Abstract

Accurate actuator tracking is critical to achieve reliable real-time hybrid simulation results for earthquake engineering research. The frequency-domain evaluation approach provides an innovative way for more quantitative post-simulation evaluation of actuator tracking errors compared with existing time domain based techniques. Utilizing the Fast Fourier Transform the approach analyzes the actuator error in terms of amplitude and phrase errors. Existing application of the approach requires using the complete length of the experimental data. To improve the computational efficiency, two techniques including data decimation and frequency decimation are analyzed to reduce the amount of data involved in the frequency-domain evaluation. The presented study aims to enhance the computational efficiency of the approach in order to utilize it for future on-line actuator tracking evaluation. Both computational simulation and laboratory experimental results are analyzed and recommendations on the two decimation factors are provided based on the findings from this study.

Keywords

Acknowledgement

Supported by : Natural Science Foundation of China

References

  1. Ahmadizadeh, M., Mosqueda, G. and Reihorn, A.M. (2008), "Compensation of actuator delay and dynamics for real-time hybrid structural simulation", Earthq. Eng. Struct. D., 37(1), 21-42. https://doi.org/10.1002/eqe.743
  2. Bonnet, P.A, Lim, C.N., Williams, M.S., Blakeborough, A., Neild, S.A., Stoten, D.P. and Taylor, C.A. (2007), "Real-time hybrid experiments with newmark integration, MCSmd outer-loop control and multi-tasking strategies", Earthq. Eng. Struct. D., 36(1), 119-141. https://doi.org/10.1002/eqe.628
  3. Bracewell, R.N. (2000), The Fourier Transform and Its Applications, 3rd Ed., Boston, McGraw-Hill.
  4. Carrion, J.E., Spencer, B.F. (2006), "Real-time hybrid testing using model-based delay compensation", Proceeding of the 4th International Conference on Earthquake Engineering, October Taipei Taiwan.
  5. Chen, C. and Ricles, J.M. (2007), "Stability analysis of SDOF real-time hybrid testing systems with explicit integration algorithms and actuator delay", Earthq. Eng. Struct. D., 37(4), 597-613.
  6. Chen, C. and Ricles, J.M. (2008a), "Development of direct integration algorithms for structural dynamics using discrete control theory", J . Eng. Mech. -ASCE, 134(8), 676-683. https://doi.org/10.1061/(ASCE)0733-9399(2008)134:8(676)
  7. Chen, C. and Ricles, J.M. (2008b), "Stability analysis of SDOF real-time hybrid testing systems with explicit integration algorithms and actuator delay", Earthq. Eng. Struct. D., 37(4), 597-613. https://doi.org/10.1002/eqe.775
  8. Chen, C. and Ricles, J.M. (2010), "Tracking error-based servo-hydraulic actuator adaptive compensation for real-time hybrid simulation", J. Eng. Mech. - ASCE, 136(4), 432-440.
  9. Chen, C., Ricles, J.M., Sause, R. and Christenson, R. (2010), "Experimental evaluation of an adaptive actuator control technique for real-time simulation of a large-scale magneto-rheological fluid damper", Smart Mater. Struct., 19, 025017. https://doi.org/10.1088/0964-1726/19/2/025017
  10. Chen, C., Ricles, J.M. and Guo, T. (2012), "Improved adaptive inverse compensation technique for real-time hybrid simulation", J. Eng. Mech. - ASCE, 138(12), 1432-1446. https://doi.org/10.1061/(ASCE)EM.1943-7889.0000450
  11. Chen, C. and Sharma, R. (2012), "A reliability assessment approach for real-time hybrid simulation results", Canadian Society for Civil Engineering annual conference and 3rd International Structural Specialty Conference, June 6-9, Edmonton, Alberta, Canada.
  12. Chen, C., Guo, T. and Xu, W. (2013a), "Frequency response evaluation of cumulative effects of servo-hydraulic dynamics in real-time hybrid simulation", Eng. Struct., submitted, under review.
  13. Chen, C., Valdovinos J. and Santiallno, H. (2013b), "Reliability assessment of real-time hybrid simulation results for seismic hazard mitigation", Proceeding of the Structures Congress, May 2-4, Pittsburgh, PA.
  14. Chen, C., Guo,T. and Xu, W.J. (2014), "Developing a frequency-domain based approach for actuator tracking assessment in real-time hybrid simulation", Network for Earthquake Engineering Simulation (NEES) (distributor). Dataset. DOI: 10.4231/D37M0409H.
  15. Darby, A.P., Blakeborough, A. and Williams, M.S. (1999), "Real-time substructure tests using hydraulic actuators", J. Eng. Mech. - ASCE, 125(10), 1133-1139. https://doi.org/10.1061/(ASCE)0733-9399(1999)125:10(1133)
  16. Darby, A.P., Blakeborough, A. and Williams, M.S. (2002), "Stability and delay compensating for real-time substructure testing", J. Eng. Mech. - ASCE, 128(12), 1276-1284. https://doi.org/10.1061/(ASCE)0733-9399(2002)128:12(1276)
  17. Guo, T., Chen, C., Xu, W. and Sanchez, F. (2014), "A frequency response analysis approach for quantitative assessment of actuator tracking for real-time hybrid simulation", Smart Mater. Struct., 23(4), 045042. https://doi.org/10.1088/0964-1726/23/4/045042
  18. Harris, F.J. (1978), "On the use of windows for harmonic analysis with the discrete Fourier transform", Proc. IEEE, 66, 51-83. https://doi.org/10.1109/PROC.1978.10837
  19. Hessabi, R.M. and Mercan, O. (2012), "Phase and amplitude error indices for error quantification in pseudodynamic testing", Earthq. Eng. Struct. D., 41(10), 1347-1364. https://doi.org/10.1002/eqe.1186
  20. Horiuchi, T., Inoue, M., Konno, T. and Namita, Y. (1999), "Real-time hybrid experimental system with actuator delay compensation and its application to a piping system with energy absorber", Earthq. Eng. Struct. D., 28(10), 1121-1141. https://doi.org/10.1002/(SICI)1096-9845(199910)28:10<1121::AID-EQE858>3.0.CO;2-O
  21. MATLAB. (2009), The Math Works, Inc., Natick, MA.
  22. Mercan, O. (2007), Analytical and experimental studies on large scale real-time pseudodynamic testing, Ph.D. dissertation, Dept. of Civil and Environmental Engineering, Lehigh Univ., Bethlehem, Pa.
  23. Mosqueda, G., Stojadinovic, B. and Mahin, S.A. (2007a), "Real-time error monitoring for hybrid simulation. Part I: methodology and experimental verification", Earthq. Eng. Struct. D., 133(8), 1100-1108. https://doi.org/10.1061/(ASCE)0733-9445(2007)133:8(1100)
  24. Mosqueda, G., Stojadinovic, B. and Mahin, S.A. (2007b), "Real-time error monitoring for hybrid simulation: Part II: structural response modification due to errors", Earthq. Eng. Struct. D., 133(8), 1109-1117 https://doi.org/10.1061/(ASCE)0733-9445(2007)133:8(1109)
  25. Nakashima, M., Kato, H. and Takaoka, E. (1992), "Development of real-time pseudodynamic testing", Earthq. Eng. Struct. D., 21(1), 79-92. https://doi.org/10.1002/eqe.4290210106
  26. PEER Strong Ground Motion Database (2013), http://peer.berkeley.edu
  27. Phillips, B.M. and Spencer, B.F. (2012), "Model-based multi-actuator control for real-time hybrid simulation", J. Eng. Mech. - ASCE, 139(2), 219-228.
  28. Ricles, J.M. (2009), "Advanced servo-hydraulic control and real-time testing of damped structures", Network for Earthquake Engineering Simulation (NEES) (distributor). http://nees.org/warehouse/project/711.
  29. Wallace, M.I., Sieber, J., Neild, S.A., Wagg, D.J. and Krauskopf, B. (2005), "Stability analysis of real-time dynamic substructuring using delay differential equation models", Earthq. Eng. Struct. D., 34(15), 1817-1832. https://doi.org/10.1002/eqe.513
  30. Wen, Y.K. (1980), "Equivalent linearization for hysteretic systems under random excitation", T ASAE, 47, 150-154.

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