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Response based track profile estimation using observable train models with numerical and experimental validations

  • Thiyagarajan, Jothi Saravanan (School of Infrastructure, Indian Institute of Technology Bhubaneswar) ;
  • Su, Di (Department of Civil Engineering, The University of Tokyo) ;
  • Tanaka, Hirofumi (Track Technology Division, Railway Technical Research Institute) ;
  • Zhao, Boyu (Takasaki Railway Maintenance Center, East Japan Railway Company) ;
  • Nagayama, Tomonori (Department of Civil Engineering, The University of Tokyo)
  • Received : 2020.07.03
  • Accepted : 2020.10.23
  • Published : 2021.02.25

Abstract

Condition monitoring of railway tracks is essential in guaranteeing the running safety of railways. Track profiles are the primary source of external excitation for a train system. While Track Recording Vehicle is often utilized for maintenance purposes, this particular vehicle is expensive and difficult to use for small railway operators. Therefore, track profile estimation through in-service vehicle response measurements, which potentially provides efficient and frequent measurement, has been studied. However, the quantitative evaluation of the vertical and lateral track profile irregularities is still challenging as the inverse analysis solutions are sometimes inaccurate and even unstable. In this paper, numerical analyses are first carried out to evaluate track profiles from acceleration and angular velocity responses measured on a train car body. For the inverse analysis, an Augmented State Kalman Filter is utilized to solve the problem using 4 degrees of freedom observable train models. The sensor installation locations are investigated through observability rank condition analysis with different measurement layout. Secondly, a field experiment is carried out in a local Japanese in-service railway network to estimate track profile from car body motions. Smartphones are utilized for the field test measurements as prevalent sensing devices. The effectiveness of the proposed approach is demonstrated with the observable train model. Numerical analyses and field experiments clarify the proposed track profile estimation's capability using only one on-board sensing device.

Keywords

Acknowledgement

The first author expresses his sincere appreciation to the Japanese Ministry of Education, Culture, Sports, Science, and Technology (MEXT) for its financial scholarship support during his doctoral study at The University of Tokyo, Japan. This work was supported by JSPS KAKENHI Grant Number JP26630210 and JP19K04570.

References

  1. Apple Inc. (2018), https://www.apple.com
  2. Barke, D. and Chiu, W.K. (2005), "Structural health monitoring in the railway industry: a review", Struct. Health Monit., 4(1), 81-93. https://doi.org/10.1177/1475921705049764
  3. Bocciolone, M., Caprioli, A., Cigada, A. and Collina, A. (2007), "A measurement system for quick rail inspection and effective track maintenance strategy", Mech. Sys. Signal Proc., 21(3), 1242-1254. https://doi.org/10.1016/j.ymssp.2006.02.007
  4. Bruni, S., Goodall, R., Mei, T.X. and Tsunashima, H. (2007), "Control and monitoring for railway vehicle dynamics", Veh. Sys. Dyn., 45(7-8), 743-779. https://doi.org/10.1080/00423110701426690
  5. BS (2003), "Railway applications/Track-Track geometry quality-part 1: characterisation of track geometry", BS EN, 13848-1.
  6. Chatzis, M.N., Chatzi, E.N. and Smyth, A.W. (2015), "On the observability and identifiability of nonlinear structural and mechanical systems", Struct. Control. Health Monitor., 22(3), 574-593. https://doi.org/10.1002/stc.1690
  7. Chiacchiari, L. and Loprencipe, G. (2015), "Measurement methods and analysis tools for rail irregularities: a case study for urban tram track", J. Modern Trans., 23(2), 137-147. https://doi.org/10.1007/s40534-015-0070-6
  8. Claus, H. and Schiehlen, W. (1998), "Modeling and simulation of railway bogie structural vibrations", Veh. Sys. Dyn., 29(S1), 538-552. https://doi.org/10.1080/00423119808969585
  9. De Rosa, A., Alfi, S. and Bruni, S. (2019), "Estimation of lateral and cross alignment in a railway track based on vehicle dynamics measurements", Mech. Sys. Signal Proc., 116, 606-623. https://doi.org/10.1016/j.ymssp.2018.06.041
  10. De Rosa, A., Kulkarni, R., Qazizadeh, A., Berg, M., Di Gialleonardo, E., Facchinetti, A. and Bruni, S. (2020), "Monitoring of lateral and cross level track geometry irregularities through on-board vehicle dynamics measurements using machine learning classification algorithms", Proc. Inst. Mech. Eng., Part F: J. Rail. Rapid Transit, 1-14. https://doi.org/10.1177/0954409720906649
  11. Fauriat, W., Mattrand, C., Gayton, N., Beakou, A. and Cembrzynski, T. (2016), "Estimation of road profile variability from measured vehicle responses", Veh. Sys. Dyn., 54(5), 585-605. https://doi.org/10.1080/00423114.2016.1145243
  12. Fries, R.H. and Coffey, B.M. (1990), "A state-space approach to the synthesis of random vertical and crosslevel rail irregularities", J. Dyn. Sys. Meas. Control., 112(1), 83-87. https://doi.org/10.1115/1.2894143
  13. Giurgiutiu, V. and Rogers, C.A. (1998). "Recent advancements in the electromechanical (E/M) impedance method for structural health monitoring and NDE", Proceedings of SPIE 3329, Smart Structures and Materials 1998: Smart Structures and Integrated Systems, 3329, San Diego, CA, USA, July, pp. 536-547. https://doi.org/10.1117/12.316923
  14. Grassie, S.L. (1996), "Measurement of railhead longitudinal profiles: a comparison of different techniques", Wear, 191(1-2), 245-251. https://doi.org/10.1016/0043-1648(95)06732-9
  15. Hermann, R. and Krener, A. (1977), "Nonlinear controllability and observability", IEEE Trans. Auto. Control, 22(5), 728-740. https://doi.org/10.1109/TAC.1977.1101601
  16. iDRIMS measurement (2015), Dynamic Response Intelligent Monitoring System measurement app for, iOS.
  17. Ishii, H., Fujino, Y., Mizuno, Y. and Kaito, K. (2006), "The Study of Train Intelligent Monitoring System using acceleration of ordinary trains", Proceedings of Asia-Pacific Workshop on Structural Health Monitoring, Yokohama, Japan, December.
  18. JRCEA (2002), Investigation committee of railway technical specification in civil engineering, ed. J.R.C.E. Association, Japan: Ministry of Land, Infrastructure, Transport and Tourism: Railway technical specification (civil engineering). [In Japanese]
  19. JSME (1996), Dynamics of Rolling Stock, ed. J.S.o.M. Engineers, Denkisya-Kenkyukai. [In Japanese]
  20. Kalman, R.E. (1963), "Mathematical description of linear dynamical systems", J. Soc. Industrial App. Math., Series A: Control, 1(2), 152-192. https://doi.org/10.1137/0301010
  21. Kobayashi, T., Naganuma, Y. and Tsunashima, H. (2014), "Condition Monitoring of Shinkansen Tracks based on Inverse Analysis", Int. J. Performability Eng., 10(5), 443-452. https://doi.org/10.23940/ijpe.14.5.p443.mag
  22. Kojima, T., Tsunashima, H. and Matsumoto, A. (2006), "Fault detection of railway track by multi-resolution analysis", Computers in Railways X, 88, 955-964, WIT Transactions on The Built Environment, WIT Press, Southampton, UK. https://doi.org/10.2495/CR060931
  23. Lourens, E., Reynders, E., De Roeck, G., Degrande, G. and Lombaert, G. (2012), "An augmented Kalman filter for force identification in structural dynamics", Mech. Sys. Signal Proc., 27, 446-460. https://doi.org/10.1016/j.ymssp.2011.09.025
  24. Naganuma, Y. and Sato, Y. (2000), "Track state control with use of real time digital data processing", Int. J. Heavy Vehicle Syst., 7(1), 82-95. https://doi.org/10.1504/IJHVS.2000.004451
  25. OBrien, E.J., Bowe, C., Quirke, P. and Cantero, D. (2017), "Determination of longitudinal profile of railway track using vehicle-based inertial readings", Proc. Inst. Mech. Eng., Part F: J. Rail. Rapid Transit, 231(5), 518-534. https://doi.org/10.1177/0954409716664936
  26. OBrien, E.J., Quirke, P., Bowe, C. and Cantero, D. (2018), "Determination of railway track longitudinal profile using measured inertial response of an in-service railway vehicle", Struct. Health Monitor., 17(6), 1425-1440. https://doi.org/10.1177/1475921717744479
  27. Odashima, M., Azami, S., Naganuma, Y., Mori, H. and Tsunashima, H. (2017), "Track geometry estimation of a conventional railway from car-body acceleration measurement", Mech. Eng. J., 4(1), 16-00498. https://doi.org/10.1299/mej.16-00498
  28. Park, G. and Inman, D.J. (2007), "Structural health monitoring using piezoelectric impedance measurements", Phil. Trans. Royal Soc. A: Math., Phy. Eng. Sci., 365(1851), 373-392. https://doi.org/10.1098/rsta.2006.1934
  29. Real, J., Salvador, P., Montalban, L. and Bueno, M. (2011), "Determination of rail vertical profile through inertial methods", Proc. Inst. Mech. Eng., Part F: J. Rail. Rapid Transit, 225(1), 14-23. https://doi.org/10.1243/09544097JRRT353
  30. Saravanan, T.J., Zhao, B., Su, D. and Nagayama, T. (2016), "An observability analysis for profile estimation through vehicle response measurement", Transforming the Future of Infrastructure through Smarter Information: Proceedings of the International Conference on Smart Infrastructure and Construction, ICE Publishing, Cambridge, UK, June, pp. 357-362.
  31. Su, D., Fujino, Y., Nagayama, T., Hernandez Jr, J.Y. and Seki, M. (2010), "Vibration of reinforced concrete viaducts under highspeed train passage: measurement and prediction including train-viaduct interaction", Struct. Infra. Eng., 6(5), 621-633. https://doi.org/10.1080/15732470903068888
  32. Sunaga, Y., Sano, I. and Ide, T. (1997), "A method to control the short wave track irregularities utilizing axle box acceleration", Railway Tech. Research Inst., Quart. Reports, 38(4), 176-181.
  33. Tanaka, H. and Shimizu, A. (2016), "Practical application of portable trolley for the continuous measurement of rail surface roughness for rail corrugation maintenance", Quarterly Report of RTRI, 57(2), 118-124. https://doi.org/10.2219/rtriqr.57.2_118
  34. Tanaka, H., Saruki, Y. and Haga, A. (2010), "Distance sampling method of on-board measured data for portable track condition monitoring device", Proceedings of the 17th Railway Technology Union Symposium, Japan.
  35. Tanaka, H., Matsumoto, M., Miwa, M. and Miyazaki, Y. (2017), "Comparison analysis of various evaluation indexes of track irregularity data for high-speed railway track", Proceedings of Railway Engineering 2017, Edinburgh, UK, June.
  36. Tanifuji, K. and Sakuyama, T. (1988), "The Characteristics of Wheel Wear in Shinkansen Electric Cars and Its Effect on the Running Vibration: In Case of Conical-Shaped Wheels with a Conicity of 1/40", JSME Int. J. Ser. 3, Vib., Ctrl. Eng., Eng. for Industry, 31(2), 457-464. https://doi.org/10.1299/jsmec1988.31.457
  37. Tsunashima, H., Naganuma, Y. and Kobayashi, T. (2014), "Track geometry estimation from car-body vibration", Veh. Sys. Dyn., 52(sup1), 207-219. https://doi.org/10.1080/00423114.2014.889836
  38. Ward, C.P., Weston, P.F., Stewart, E.J.C., Li, H., Goodall, R.M., Roberts, C., Mei, T.X., Charles, G. and Dixon, R. (2011), "Condition monitoring opportunities using vehicle-based sensors", Proc. Inst. Mech. Eng., Part F: J. Rail. Rapid Transit, 225(2), 202-218. https://doi.org/10.1177/09544097JRRT406
  39. Weston, P.F., Ling, C.S., Roberts, C., Goodman, C.J., Li, P. and Goodall, R.M. (2007a), "Monitoring vertical track irregularity from in-service railway vehicles", Proc. Inst. Mech. Eng., Part F: J. Rail. Rapid Transit, 221(1), 75-88. https://doi.org/10.1243/0954409JRRT65
  40. Weston, P.F., Ling, C.S., Goodman, C.J., Roberts, C., Li, P. and Goodall, R.M. (2007b), "Monitoring lateral track irregularity from in-service railway vehicles", Proc. Inst. Mech. Eng., Part F: J. Rail. Rapid Transit, 221(1), 89-100. https://doi.org/10.1243/0954409JRRT64
  41. Weston, P., Roberts, C., Yeo, G. and Stewart, E. (2015), "Perspectives on railway track geometry condition monitoring from in-service railway vehicles", Veh. Sys. Dyn., 53(7), 1063-1091. https://doi.org/10.1080/00423114.2015.1034730
  42. Xue, K., Nagayama, T. and Zhao, B. (2020), "Road profile estimation and half-car model identification through the automated processing of smartphone data", Mech. Sys. Signal Proc., 142, 106722. https://doi.org/10.1016/j.ymssp.2020.106722
  43. Yoshimura, A. (1995), "Theory and practice for restoring an original waveform of a railway track irregularity", Railway Tech. Research Inst., Quart. Reports, 36(2), 85-94.
  44. Zhao, B., Nagayama, T. and Xue, K. (2019), "Road profile estimation, and its numerical and experimental validation, by smartphone measurement of the dynamic responses of an ordinary vehicle", J. Sound Vib., 457, 92-117. https://doi.org/10.1016/j.jsv.2019.05.015