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Identification of structural displacements utilizing concurrent robotic total station and GNSS measurements

  • Pehlivan, Huseyin (Department of Geomatics Engineering, Faculty of Engineering, Gebze Technical University)
  • Received : 2021.11.29
  • Accepted : 2022.07.04
  • Published : 2022.10.25

Abstract

Monitoring large structures is a significant issue involving public health on which new studies are constantly carried out. Although the Global Navigation Satellite System (GNSS) is the most preferable method for measuring structural displacements, total stations, one of the classical geodetic instruments, are the first devices that come to mind in cases that require complementary usage and auxiliary measurement methods. In this study, the relative displacements of the structural movements of a tower were determined using robotic total stations (RTS) and GNSS. Two GNSS receivers and two RTS observations were carried out simultaneously for 10 hours under normal weather conditions. The spectral analysis of the GNSS data was performed using fast Fourier transform (FFT), and while the dominant modal frequencies were determined, the total station data were balanced with the least-squares technique, and the position and position errors were calculated for each measurement epoch. It has been observed that low-frequency structural movements can be determined by both methods. This result shows that total station measurements are a helpful alternative method for monitoring large structures in situations where measurements are not possible due to the basic handicaps of GNSS or where it is necessary to determine displacements with short observations.

Keywords

References

  1. Allan, A.L. (1988), "The principles of theodolite intersection systems", Survey Review, 29(227), 226-234. https://doi.org/10.1179/sre.1988.29.227.226
  2. Alsadik, B. (2019), "Chapter 4 - Observation Models and Least Squares Adjustment", In: Adjustment Models in 3D Geomatics and Computational Geophysics, pp. 89-151. https://doi.org/10.1016/b978-0-12-817588-0.00004-0
  3. Breuer, P., Chmielewski, T., Gorski, P., Konopka, E. and Tarczynski, L. (2015), "Monitoring horizontal displacements in a vertical profile of a tall industrial chimney using Global Positioning System technology for detecting dynamic characteristics", Struct. Control Health Monitor., 22(7), 1002-1023. https://doi.org/10.1002/stc.1730
  4. Breuer, P., Chmielewski, T. and Gorski, P. (2021), "Dynamic response of the Stuttgart TV tower measured by classical instruments and GPS technology", Arch. Civil Eng., 67(1). https://doi.org/10.24425/ace.2021.136459
  5. Casciati, S. and Vece, M. (2017), "Real-time monitoring system for local storage and data transmission by remote control", Adv. Eng. Software, 112, 46-53. https://doi.org/10.1016/j.advengsoft.2017.06.010
  6. Chan, W.-S., Xu, Y.-L., Ding, X.-L., Xiong, Y.-L. and Dai, W.-J. (2006), "Assessment of dynamic measurement accuracy of GPS in three directions", J. Survey. Eng., 132(3), 108-117. https://doi.org/10.1061/(ASCE)0733-9453(2006)132:3(108)
  7. Chatzi, E.N. and Fuggini, C. (2012), "Structural identification of a super-tall tower by GPS and accelerometer data fusion using a multi-rate Kalman filter", In: Life-Cycle and Sustainability of Civil Infrastructure Systems, Proceedings of the 3rd International Symposium on Life-Cycle Civil Engineering, IALCCE 2012, Vienna, Austria, October.
  8. Cook, D. (2006), "Robotic total stations and remote data capture: Challenges in construct", In: Geotechnical News (Vol. 24, Issue 4).
  9. Cosser, E., Roberts, G.W., Meng, X. and Dodson, A.H. (2003), "Measuring the dynamic deformation of bridges using a total station", Proceedings of 11th FIG Symposium on Deformation Monitoring, Santorini, Greece, May.
  10. Ehigiator, M.O. and Ehigiator-Irughe, R. (2018), "Formulation and implementation of mathematical models suitable for deformation analysis of structures", Nigerian J. Technol., 37(2), 294-301. https://doi.org/10.4314/njt.v37i2.2
  11. Ehigiator, M.O., Oladosu, S.O. and Ehigiator-Irughe, R. (2017), "Application of Least Squares Estimation Techniques in 2D Conformal Coordinates Transformation from Local to National", Nigerian J. Environ. Sci. Technol., 1(2), 71-84. https://doi.org/10.36263/nijest.2017.02.0039
  12. Ehigiator-Irughe, R., Ehiorobo, J.O. and Ehigiator, M.O. (2010), "Distortion of oil and Gas infrastructure from Geomatics support view", J. Emerg. Trends Eng. Appl. Sci. (JETEAS), 1, 14-23. https://hdl.handle.net/10520/EJC156745 10520/EJC156745
  13. Erdogan, H. and Gulal, E. (2013), "Ambient vibration measurements of the Bosphorus suspension bridge by total station and GPS", Experim. Techniq., 37(3), 16-23. https://doi.org/10.1111/j.1747-1567.2011.00723.x
  14. Frukacz, M., Presl, R., Wieser, A. and Favot, D. (2017), "Pushing the sensitivity limits of RTS-based continuous deformation monitoring of an alpine valley", Appl. Geomat., 9(2), 81-92. https://doi.org/10.1007/s12518-017-0182-2
  15. Hatoum, H.M. and Mustafin, M.G. (2020), "Optimization of locating robotic total stations for determining the deformations of buildings and structures", Geodezia i Kartografia, 963(9). https://doi.org/10.22389/0016-7126-2020-963-9-2-13
  16. Jo, H., Sim, S.H., Tatkowski, A., Spencer, B.F. and Nelson, M.E. (2013), "Feasibility of displacement monitoring using low-cost GPS receivers", Struct. Control Health Monitor., 20(9), 1240-1254. https://doi.org/10.1002/stc.1532
  17. Kaloop, M.R. and Li, H. (2009), "Tower bridge movement analysis with GPS and accelerometer techniques: Case study Yonghe tower bridge", Inform. Technol. J., 8(8), 1213-1220. https://doi.org/10.3923/itj.2009.1213.1220
  18. Kaloop, M.R., Elbeltagi, E. and Elnabwy, M.T. (2015), "Bridge monitoring with wavelet principal component and spectrum analysis based on GPS measurements: Case study of the Mansoura Bridge in Egypt", J. Perform. Constr. Facil., 29(3), p. 04014071. https://doi.org/10.1061/(ASCE)CF.1943-5509.0000559
  19. Kaloop, M.R., Hu, J.W. and Elbeltagi, E. (2016), "Adjustment and assessment of the measurements of low and high sampling frequencies of GPS real-time monitoring of structural movement", ISPRS Int. J. Geo-Inform., 5(12), 222. https://doi.org/10.3390/ijgi5120222
  20. Kovacic, B. and Motoh, T. (2019), "Determination of static and dynamic response of structures with geodetic methods in loading tests", Acta Geodaetica et Geophysica, 54(2), 243-261. https://doi.org/10.1007/s40328-019-00251-x
  21. Lekidis, V., Tsakiri, M., Makra, K., Karakostas, C., Klimis, N. and Sous, I. (2005), "Evaluation of dynamic response and local soil effects of the Evripos cable-stayed bridge using multi-sensor monitoring systems", Eng. Geol., 79(1-2), 43-59. https://doi.org/10.1016/j.enggeo.2004.10.015
  22. Lienhart, W., Ehrhart, M. and Grick, M. (2017), "High frequent total station measurements for the monitoring of bridge vibrations", J. Appl. Geodesy, 11(1), 1-8. https://doi.org/10.1515/jag-2016-0028
  23. Meng, X., Dodson, A.H. and Roberts, G.W. (2007), "Detecting bridge dynamics with GPS and triaxial accelerometers", Eng. Struct., 29(11), 3178-3184. https://doi.org/10.1016/j.engstruct.2007.03.012
  24. Moschas, F. and Stiros, S. (2011), "Measurement of the dynamic displacements and the modal frequencies of a short-span pedestrian bridge using GPS and an accelerometer", Eng. Struct., 33(1), 10-17. https://doi.org/10.1016/j.engstruct.2010.09.013
  25. Moschas, F., Psimoulis, P.A. and Stiros, S.C. (2013), "GPS/RTS data fusion to overcome signal deficiencies in certain bridge dynamic monitoring projects", Smart Struct. Syst., Int. J., 12(3-4), 251-269. https://doi.org/10.12989/sss.2013.12.3_4.251
  26. Okwuashi, O. and Asuquo, I. (2012), "Basics of Least Squares Adjustment Computation in Surveying", Int. J. Sci. Res. (IJSR), 3(8), 188-193.
  27. Park, H.S., Lee, H.M., Adeli, H. and Lee, I. (2007), "A new approach for health monitoring of structures: Terrestrial laser scanning", Comput.-Aided Civil Infrastr. Eng., 22(1), 19-30. https://doi.org/10.1111/j.1467-8667.2006.00466.x
  28. Pehlivan, H. (2018), "Frequency analysis of GPS data for structural health monitoring observations", Struct. Eng. Mech., Int. J., 66(2), 185-193. https://doi.org/10.12989/sem.2018.66.2.185
  29. Pehlivan, H. (2021), "The Analysis Methodology of Robotic Total Station Data for Determination of Structural Displacements", Adv. Geomat., 1(1), 1-7.
  30. Pehlivan, H. and Bayata, H.F. (2016), "Usability of inclinometers as a complementary measurement tool in structural monitoring", Struct. Eng. Mech., Int. J., 58(6), 1077-1085. https://doi.org/10.12989/sem.2016.58.6.1077
  31. Pehlivan, H., Aydin, O., Gulal, E. and Bilgili, E. (2015), "Determining the behavior of high-rise structures with geodetic hybrid sensors", Geomat. Nat. Hazards Risk, 6(8), 702-717. https://doi.org/10.1080/19475705.2013.854280
  32. Psimoulis, P.A. and Stiros, S.C. (2007), "Measurement of deflections and of oscillation frequencies of engineering structures using Robotic Theodolites (RTS)", Eng. Struct., 29(12), 3312-3324. https://doi.org/10.1016/j.engstruct.2007.09.006
  33. Psimoulis, P.A. and Stiros, S.C. (2008), "Experimental assessment of the accuracy of GPS and RTS for the determination of the parameters of oscillation of major structures", Comput.-Aided Civil Infrastr. Eng., 23(5), 389-403. https://doi.org/10.1111/j.1467-8667.2008.00547
  34. Psimoulis, P. and Stiros, S. (2011), "Robotic theodolites (RTS): Measuring structure excitation", GIM Int., 25(4), 29-33.
  35. Psimoulis, P. and Stiros, S. (2013), "Measuring deflections of a short-span railway bridge using a Robotic Total Station (RTS)", J. Bridge Eng., 18(2), 182-185. http://dx.doi.org/10.1061/(ASCE)BE.1943-5592.0000334
  36. Psimoulis, P., Pytharouli, S., Karambalis, D. and Stiros, S. (2008), "Potential of Global Positioning System (GPS) to measure frequencies of oscillations of engineering structures", J. Sound Vib., 318(3), 606-623. https://doi.org/10.1016/j.jsv.2008.04.036
  37. Radovanovic, R.S. and Teskey, W.F. (2001), "Dynamic monitoring of deforming structures: GPS versus robotic tacheometry systems", Proceeding of the10th FIG International Symposium on Deformation Measurements, Orange, CA, USA, March.
  38. Roberts, G.W., Meng, X. and Dodson, A.H. (2004), "Integrating a global positioning system and accelerometers to monitor the deflection of bridges", J. Survey. Eng., 130(2), 65-72. https://doi.org/10.1061/(ASCE)0733-9453(2004)130:2(65)
  39. Shen, N., Chen, L., Liu, J., Wang, L., Tao, T., Wu, D. and Chen, R. (2019), "A review of global navigation satellite system (GNSS)- based dynamic monitoring technologies for structural health monitoring", Remote Sensing, 11(9), p. 1001. https://doi.org/10.3390/rs11091001
  40. Stiros, S., Psimoulis, P., Moschas, F., Saltogianni, V., Tsantopoulos, E. and Triantafyllidis, P. (2019), "Multi-sensor measurement of dynamic deflections and structural health monitoring of flexible and stiff bridges", Bridge Struct., 15(1-2), 43-51. https://doi.org/10.3233/BRS-190152
  41. Trimble (2021), https://geospatial.trimble.com/products-andsolutions/trimble-s5.htm.
  42. Wang, X., Zhao, Q., Xi, R., Li, C., Li, G. and Li, L. (2021), "Review of bridge structural health monitoring based on GNSS: from displacement monitoring to dynamic characteristic identification", IEEE Access, 9, 80043-80065 https://doi.org/10.1109/ACCESS.2021.3083749
  43. Xu, L., Guo, J.J. and Jiang, J.J. (2002), "Time-frequency analysis of a suspension bridge based on GPS", J. Sound Vib., 254(1), 105-116. https://doi.org/10.1006/jsvi.2001.4087
  44. Yigit, C.O., Coskun, M.Z., Yavasoglu, H., Arslan, A. and Kalkan, Y. (2016), "The potential of GPS Precise Point Positioning method for point displacement monitoring: A case study", Measurement, 91, 398-404. https://doi.org/10.1016/j.measurement.2016.05.074
  45. Yu, J., Meng, X., Shao, X., Yan, B. and Yang, L. (2014), "Identification of dynamic displacements and modal frequencies of a medium-span suspension bridge using multimode GNSS processing", Eng. Struct., 81, 432-443. https://doi.org/10.1016/j.engstruct.2014.10.010
  46. Yu, J., Yan, B., Meng, X., Shao, X. and Ye, H. (2016), "Measurement of bridge dynamic responses using networkbased real-time kinematic GNSS technique", J. Survey. Eng., 142(3), p. 04015013. https://doi.org/10.1061/(ASCE)SU.1943-5428.0000167
  47. Yu, J., Fang, Z., Meng, X., Xie, Y. and Fan, Q. (2020), "Measurement of quasi-static and dynamic displacements of footbridges using the composite instrument of a smartstation and an accelerometer: Case studies", Remote Sensing, 12(16), 2635. https://doi.org/10.3390/RS12162635
  48. Zhao, X., Liu, H., Yu, Y., Xu, X., Hu, W., Li, M. and Ou, J. (2015), "Bridge displacement monitoring method based on laser projection-sensing technology", Sensors, 15(4), 8444-8463. https://doi.org/10.3390/s150408444
  49. Zhou, J., Xiao, H., Jiang, W., Bai, W. and Liu, G. (2020), "Automatic subway tunnel displacement monitoring using robotic total station", Measurement, 151, p. 107251. https://doi.org/10.1016/j.measurement.2019.107251
  50. Zhou, J., Shi, B., Liu, G. and Ju, S. (2021), "Accuracy analysis of dam deformation monitoring and correction of refraction with robotic total station", PLoS ONE, 16, p. e0251281. https://doi.org/10.1371/journal.pone.0251281