[1] GILLESPIE, T. D., KARAMIHAS, S. M., SAYERS, M. W., and HANSEN, W. Effects of Heavy-vehicle Characteristics on Pavement Response and Performance, National Academy Press, Washington, D. C. (1993) [2] SUN, L. and DENG, X. J. Predicting vertical dynamic loads caused by vehicle-pavement interaction. Journal of Transportation Engineering, 124, 470-478(1998) [3] KHARRZI, S., AUGUSTO, B., and FROJD, N. Vehicle dynamics testing in motion based driving simulators. Vehicle System Dynamics, 58, 92-107(2020) [4] PAN, Y. J., XIANG, S. D., HE, Y. S., ZHAO, J., and MIKKOLA, A. The validation of a semi-recursive vehicle dynamics model for a real-time simulation. Mechanism and Machine Theory, 151, 103907(2020) [5] DONG, X. X., LI, L., CHENG, S., and WANG, Z. C. An integrated strategy for vehicle dynamics stability considering the uncertainties of side-slip angle. IET Intelligent Transport Systems, 14, 1116-1124(2020) [6] REN, Z. S., XIN, X., SUN, G., and WEI, X. The effect of gear meshing on the high-speed vehicle dynamics. Vehicle System Dynamics, 2020, 1-22(2020) [7] WANG, W. Y., LI, I. H., CHEN, M. C., SU, S. F., and HSH, S. B. Dynamic slip-ratio estimation and control of antilock braking systems using an observer-based direct adaptive fuzzy-neural controller. IEEE Transactions on Industrial Electronics, 56, 1746-1756(2008) [8] FENG, Y. C., CHEN, H., ZHAO, H. Y., and ZHOU, H. Road tire friction coefficient estimation for four wheel drive electric vehicle based on moving optimal estimation strategy. Mechanical Systems and Signal Processing, 139, 106416(2020) [9] YANG, S. P., CHEN, L. Q., and LI, S. H. Dynamics of Vehicle-road Coupled System, Springer Jointly Published with Science Press, Berlin/Heidelberg (2015) [10] KIM, S. M. and MCCULLOUGH, B. F. Dynamic response of plate on viscous Winkler foundation to moving loads of varying amplitude. Engineering Structures, 25, 1179-1188(2003) [11] YANG, S. P., LI, S. H., and LU, Y. J. Investigation on dynamical interaction between a heavy vehicle and road pavement (in Chinese). Vehicle System Dynamics, 48, 923-944(2010) [12] WEDIG, W. V. Digital simulation of road-vehicle systems. Probabilistic Engineering Mechanics, 27, 82-87(2012) [13] WEDIG, W. V. Stochastic dynamics of road-vehicle systems and related bifurcation problems. AIP Conference Proceedings, 1129, 33-36(2009) [14] CANUDAS-DE-WIT, C. and TSIOTRAS, P. Dynamic tire friction models for vehicle traction control. Proceedings of the 38th IEEE Conference on Decision and Control, 4, 3746-3751(1999) [15] ETIENNE, L., ACOSTA LUA, C., DI GENNARO, S., and BARBOT, J. P. A super-twisting controller for active control of ground vehicles with lateral tire-road friction estimation and CarSim validation. International Journal of Control Automation and Systems, 18, 1177-1189(2020) [16] CABRERA, J. A., CASTILLO, J. J., PEREZ, J., VELASCO, J. M., GUERRA, A. J., and HERNANDEZ, P. A procedure for determining tire-road friction characteristics using a modification of the magic formula based on experimental results. Sensors, 18, 896(2018) [17] CHEN, Y. and WANG, J. M. Vehicle-longitudinal-motion-independent real-time tire-road friction coefficient estimation. 49th IEEE Conference on Decision and Control, 2010, 2910-2915(2010) [18] YOON, J. H., LI, S. E., and AHN, C. Estimation of vehicle sideslip angle and tire-road friction coefficient based on magnetometer with GPS. International Journal of Automotive Technology, 17, 427-435(2016) [19] LI, S. E., CHEN, H. L., LI, R. J., LIU, Z. Y., WANG, Z. T., and XIN, Z. Predictive lateral control to stabilise highly automated vehicles at tire-road friction limits. Vehicle System Dynamics, 58, 768-786(2020) [20] ZHANG, Y. Z., YI, J. G., and LIU, T. Embedded flexible force sensor for in-situ tire-road interaction measurements. IEEE Sensors Journal, 13, 1756-1765(2013) [21] LU, Y. J., ZHANG, J. N., YANG, S. P., and LI, Z. Y. Study on improvement of LuGre dynamical model and its application in vehicle handling dynamics. Journal of Mechanical Science and Technology, 32, 545-558(2019) [22] CHEN, Z., XIE, Z. P., and ZHANG, J. Measurement of vehicle-bridge-interaction force using dynamic tire pressure monitoring. Mechanical Systems and Signal Processing, 104, 370-383(2018) [23] WIELITZKA, M., DAGEN, M., and ORTMAIER, T. State and Maximum Friction Coefficient Estimation in Vehicle Dynamics Using UKF, American Control Conference, IEEE, Seattle (2017) [24] DIAO, X. Y., JIN, Y., MA, L., DING, S. H., and JIANG, H. B. Composite active front steering controller design for vehicle system. IEEE Access, 5, 6697-6706(2017) [25] LUO, H., LIANG, B., WU, Z. H., and SHI, S. R. Study and application of a 4-DOF 1/2 vehicle-road coupling dynamic model (in Chinese). Applied Mathematics and Mechanics, 35, 737-749(2014) [26] ANSARI, M., ESMAILZADEH, E., and YOUNESIAN, D. Internal-external resonance of beams on non-linear viscoelastic foundation traversed by moving load. Nonlinear Dynamics, 61, 163-182(2010) [27] YOUNESIAN, D., MARJANI, S. R., and ESMAILZADEH, E. Nonlinear vibration analysis of harmonically excited cracked beams on viscoelastic foundations. Nonlinear Dynamics, 71, 109-120(2013) [28] ESMAILZADEH, E. and JALILI, N. Vehicle-passenger-structure interaction of uniform bridges traversed by moving vehicles. Journal of Sound and Vibration, 260, 611-635(2003) [29] LI, Q., LIU, J. Q., and CHEN, C. C. Dynamic analysis of the 4-DOF vehicle-road coupling system under random excitation (in Chinese). Applied Mathematics and Mechanics, 36, 460-473(2015) [30] YOUNESIAN, D., MARJANI, S. R., and ESMAILZADEH, E. Nonlinear vibration analysis of harmonically excited cracked beams on viscoelastic foundations. Nonlinear Dynamics, 71, 109-120(2013) [31] YOUNESIAN, D., SADRI, M., and ESMAILZADEH, E. Primary and secondary resonance analyses of clamped-clamped micro-beams. Nonlinear Dynamics, 76, 1867-1884(2014) [32] SADRI, M. and YOUNESIAN, D. Nonlinear harmonic vibration analysis of a plate-cavity system. Nonlinear Dynamics, 74, 1267-1279(2013) [33] ELNASHAR, G., BHAT, R. B., and SEDAGHATI, R. Modeling and dynamic analysis of a vehicle-flexible pavement coupled system subjected to road surface excitation. Journal of Mechanical Science and Technology, 33, 3115-3125(2019) [34] DING, H., CHEN, L. Q., and YANG, S. P. Convergence of Galerkin truncation for dynamic response of finite beams on nonlinear foundations under a moving load. Journal of Sound and Vibration, 331, 2426-2442(2012) [35] DING, H., SHI, K. L., and CHEN, L. Q. Adomian polynomials for nonlinear response of supported Timoshenko beams subjected to a moving harmonic load. Acta Mechanica Solida Sinica, 27, 383-393(2014) [36] ANSARI, M., ESMAILZADEH, E., and YOUNESIAN, D. Internal-external resonance of beams on non-linear viscoelastic foundation traversed by moving load. Acta Mechanica Solida Sinica, 6, 163-182(2010) [37] ANSARI, M., ESMAILZADEH, E., and YOUNESIAN, D. Frequency analysis of finite beams on nonlinear Kelvin-Voight foundation under moving loads. Journal of Sound and Vibration, 330, 1455-1471(2011) [38] RAJAMANI, R., PHANOMCHOENG, G., PIYABONGKARN, D., and LEW, J. Y. Algorithms for real-time estimation of individual wheel tire-road friction coefficients. IEEE/ASME Transactions on Mechatronics, 17, 1183-1195(2012) [39] LI, C. B. and PAVELESCU, D. The friction-speed relation and its influence on the critical velocity of the stick-slip motion. Wear, 82, 277-289(1982) [40] NORAMBUENA-CONTRERAS, J., CASTRO-FRESNO, D., VEGA-ZAMANILLO, A., CELAYA, M., and LOMBILLO-VOZMEDIANO, I. Dynamic modulus of asphalt mixture by ultrasonic direct test. NDT & E International, 43, 629-634(2010) [41] LU, Y. J., ZHENG, W. G., CHEN, E. L., and ZHANG, J. N. Research on ride comfort and safety of vehicle under limited conditions based on dynamical tire model. Journal of Vibroengineering, 19, 1241-1259(2017) |