Publication Cover
Structure and Infrastructure Engineering
Maintenance, Management, Life-Cycle Design and Performance
Volume 17, 2021 - Issue 9
492
Views
2
CrossRef citations to date
0
Altmetric
Research Article

Iterative linear optimization method for bridge weigh-in-motion systems using accelerometers

, , &
Pages 1245-1256 | Received 01 Dec 2019, Accepted 20 Apr 2020, Published online: 08 Aug 2020

References

  • Alencar, G., Jesus, A.M., Calçada, R.A., & Silva, J.G.S.D. (2018). Fatigue life evaluation of a composite steel-concrete roadway bridge through the hot-spot stress method considering progressive pavement deterioration. Engineering Structures, 166, 46–61. doi:10.1016/j.engstruct.2018.02.058
  • Bao, T., Babanajad, S. K., Taylor, T., & Ansari, F. (2016). Generalized method and monitoring technique for shear-strain-based bridge weigh-in-motion. Journal of Bridge Engineering, 21(1), 04015029. doi:10.1061/(ASCE)BE.1943-5592.0000782
  • Carraro, F., Gonçalves, M. S., Lopez, R. H., Miguel, L. F. F., & Valente, A. M. (2019). Weight estimation on static B-WIM algorithms: A comparative study. Engineering Structures, 198, 109463. doi:10.1016/j.engstruct.2019.109463
  • Chen, Z., Chan, T. H. T., Nguyen, A., & Yu, L. (2019). Identification of vehicle axle loads from bridge responses using preconditioned least square QR-factorization algorithm. Mechanical Systems and Signal Processing, 128, 479–496. doi:10.1016/j.ymssp.2019.03.043
  • Fu, G., & Hag-Elsafi, O. (2000). Vehicular overloads: Load model, bridge safety, and permit checking. Journal of Bridge Engineering, 5(1), 49–57. doi:10.1061/(ASCE)1084-0702(2000)5:1(49)
  • González, A., Dowling, J., O’Brien, E. J., & Žnidaric, A. (2012). Testing of a bridge weigh-in-motion algorithm utilising multiple longitudinal sensor locations. Journal of Testing and Evaluation, 40(6), 104576. doi:10.1520/JTE104576
  • Han, W.S., Yuan, Y.G., Xie, Q., Chen, X., & Huang, P.M. (2018). Reliability-based truck weight regulation of small- to medium-span bridges. Journal of Bridge Engineering, 23(1), 04017109. doi:10.1061/(ASCE)BE.1943-5592.0001149
  • Hansen, P.C. (1994). Regularization tools: A matlab package for analysis and solution of discrete ill-posed problems. Numerical Algorithms, 6(1), 1–35. doi:10.1007/BF02149761
  • Helmi, K., Taylor, T., & Ansari, F. (2015). Shear force-based method and application for real-time monitoring of moving vehicle weights on bridges. Journal of Intelligent Material Systems and Structures, 26(5), 505–516. doi:10.1177/1045389X14529612
  • Japan Bridge Association (2018). Bridges yearbook database (In Japanese). Retrieved from http://www.jasbc.or.jp/kyoryodb/index.cgi
  • Lydon, M., Robinson, D., Taylor, S. E., Amato, G., Brien, E. J. O., & Uddin, N. (2017). Improved axle detection for bridge weigh-in-motion systems using fiber optic sensors. Journal of Civil Structural Health Monitoring, 7(3), 325–332. doi:10.1007/s13349-017-0229-4
  • Lydon, M., Taylor, S. E., Robinson, D., Mufti, A., & Brien, E. J. O. (2016). Recent developments in bridge weigh in motion (B-WIM). Journal of Civil Structural Health Monitoring, 6(1), 69–81. doi:10.1007/s13349-015-0119-6
  • Mohammed, Y. M., & Uddin, N. (2019). Acceleration-based bridge weigh-in-motion. Bridge Structures, 14(4), 131–138. doi:10.3233/BRS-190143
  • Moses, F. (1979). Weigh-in-motion system using instrumented bridges. Transportation Engineering Journal of ASCE, 105(3), 233–249.
  • O’Brien, E. J., Quilligan, M. J., & Karoumi, R. (2006). Calculating an influence line from direct measurements. Proceedings of the Institution of Civil Engineers - Bridge Engineering, 159(1), 31–34. doi:10.1680/bren.2006.159.1.31
  • O’Brien, E. J., Rowley, C. W., Gonzalez, A., & Green, M. F. (2009). A regularised solution to the bridge weigh-in-motion equations. International Journal of Heavy Vehicle Systems, 16(3), 310–327. doi:10.1504/IJHVS.2009.027135
  • O’Brien, E. J., Znidaric, A., & Dempsey, A. T. (1999). Comparison of two independently developed bridge weigh-in-motion systems. International Journal of Heavy Vehicle Systems, 6(1/2/3/4), 147–161. doi:10.1504/IJHVS.1999.054503
  • Richardson, J., Jones, S., Brown, A., O', E., Brien, N.A., & Hajializadeh, D. (2014). On the use of bridge weigh-in-motion for overweight truck enforcement. International Journal of Heavy Vehicle Systems, 21(2), 83–104. doi:10.1504/IJHVS.2014.061632
  • Rowley, C. W., O’Brien, E. J., Gonzalez, A., & Žnidaric, A. (2009). Experimental testing of a moving force identification bridge weigh-in-motion algorithm. Experimental Mechanics, 49(5), 743–746. doi:10.1007/s11340-008-9188-3
  • Sekiya, H., Kubota, k., & Miki, C. (2018). Simplified portable bridge weigh-in-motion system using accelerometers. Journal of Bridge Engineering, 23(1), 04017124. doi:10.1061/(ASCE)BE.1943-5592.0001174
  • Tateishi, K., Takenouchi, H., & Miki, C. (1995). Mechanism for developing local stress at the connection details in steel bridge structures. Doboku Gakkai Ronbunshu, 1995(507), 109–119. (in Japanese). doi:10.2208/jscej.1995.507_109
  • Wang, H., Nagayama, T., Zhao, B., & Su, D. (2017). Identification of moving vehicle parameters using bridge responses and estimated bridge pavement roughness. Engineering Structures, 153, 57–70. doi:10.1016/j.engstruct.2017.10.006
  • Wang, W., Deng, L., & Shao, X. (2016). Fatigue design of steel bridges considering the effect of dynamic vehicle loading and overloaded trucks. Journal of Bridge Engineering, 21(9), 04016048. doi:10.1061/(ASCE)BE.1943-5592.0000914
  • Yu, Y., Cai, C. S., & Deng, L. (2016). State-of-the-art review on bridge weigh-in-motion technology. Advances in Structural Engineering, 19(9), 1514–1530. doi:10.1177/1369433216655922
  • Zhao, H., Uddin, N., O’Brien, E. J., Shao, X., & Zhu, P. (2014). Identification of vehicular axle weights with a bridge weigh-in-motion system considering transverse distribution of wheel loads. Journal of Bridge Engineering, 19(3), 04013008. doi:10.1061/(ASCE)BE.1943-5592.0000533
  • Zhong, J., Liu, H., & Yu, L. (2019). Sparse regularization for traffic load monitoring using bridge response measurements. Measurement, 131, 173–182. doi:10.1016/j.measurement.2018.07.044

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.