Modeling the Road Pavement Dynamic Response Due to Heavy Vehicles Loadings and Kinematic Excitations General Asymmetries
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Modeling the Road Pavement Dynamic Response Due to Heavy Vehicles Loadings and Kinematic Excitations General Asymmetries

Authors: Josua K. Junias, Fillemon N. Nangolo, Petrina T. Johaness

Abstract:

The deterioration of pavement can lead to the formation of potholes, which cause the wheels of a vehicle to experience unusual and uneven movement. In addition, improper loading practices of heavy vehicles can result in dynamic loading of the pavement due to the vehicle's response to the irregular movement caused by the potholes. The combined effects of asymmetrical vehicle loading and uneven road surfaces has an effect on pavement dynamic loading. This study aimed to model the pavement's dynamic response to heavy vehicles under different loading configurations and wheel movements. A sample of 225 cases with symmetrical and asymmetrical loading and kinematic movements was used, and 27 validated 3D pavement-vehicle interactive models were developed using SIMWISE 4D. The study found that the type of kinematic movement experienced by the heavy vehicle affects the pavement's dynamic loading, with eccentrically loaded, asymmetrically kinematic heavy vehicles having a statistically significant impact. The study also suggests that the mass of the vehicle's suspension system plays a role in the pavement's dynamic loading.

Keywords: Eccentricities, pavement dynamic loading, vertical displacement dynamic response, heavy vehicles.

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[1] N. Mona, Z. Derun, S. S. Maryam and L. L. Robert, "characterization of the adhesive and cohensive moisture damage for asphalt concrete," Construction and Building Materials, 2020.
[2] B. K. Mohammed, S. S. Gurumoorthy and B. Narayana, "Prediction of Aluminum Wheel Distortion under Pothole Impact," ResearchGate: Science in the Age of Experience, 2016.
[3] M. Borowice, A. K. Sen, G. Litak, J. Hunicz, G. Koszalka and A. Niewczas, "Vibration of vehicle excited by real road profiles," ResearchGate, pp. 99-109, 2010.
[4] G. Bonin, G. Cantisani, G. Loprencipe and A. Ranzo, "Modelling of dynamic phenomena in road and airpot pavements," Dipartimento di Idraulica, Trasporti e Strade (DITS)-Università degli Studi di Roma, Roma, 2004.
[5] K. Yong-Rak, B. Hoki and I. Soohyok, "Impact of Truck Loading on Design and Analysis of Asphaltic Pavement Structures," Final Reports and Technical Briefs from Mid-America Transportation Center, 2010.
[6] T. Ester and G. Anthony, "Dynamic Effects of Heavy vehicles on Pavement Performance-Stage 1," Western Australian Road Research and Innovation Program (WARRIP), Victoria, 2018.
[7] J. Soukup and J. Volek, "Vibration of Mechanical System," Ústí nad Labem, 2008.
[8] J. Ellis, Road Vehicl Dynamics, Ahron USA: London Business Books Limited, 1989.
[9] H. Wenjun, Z. Quanman, L. Yao, L. Zhigang and K. Xianghui, "Damage Evaluation of the Paving around Manholes Structures under vehicle Dynamic Load," Advances in Materials Science and Engineering (Hindawi), 2020.
[10] A. Vaitkus, J. Gražulytė and K. Rita, "Influence of Static and Impact Load on Pavement Performance," in The 9th International Conference "Environmental Engineering", 2014.
[11] G. Minrui and Z. Xinglin, "Tire-Pavement Contact Stress Characteristics and Critical Slip Ratio at Multiple Working Conditions," HINDAWI, 2019.
[12] H. Haiqi, L. Rui, Y. Qihui, P. Jianzhong and F. Guo, "Analysis of the Tire Pavement Contact Stress Characteristics during Vehicle Maneuvering," KSCE Journal of Civil Engineering, pp. 2451-2463, 2021.
[13] L. Jiao, "Vehicle Model for tyre-ground contact forces evaluation," Department of Aeronautical and vehicle Engineering, TKH Royal Institute of Technology, Stockholm, 2013.
[14] K. Andrey, "Specifics of calculating required strength of highway pavements," ScienceDirect: Transportation Research Procedia, pp. 290-301, 2020.
[15] K. Hou, J. Kalousek and R. Dong, "A dynamic model for an asymmetrical vehicle/track system," Journal of Sound and Vibration, pp. 591-604, 2003.
[16] A. Eiber and P. Ziegler, "Dynamics Loads in teh Suspension of a Heavy Truck," XI DINAME Proceedings, 2005.
[17] N. Naveen, S. M. Yadav and A. S. Kumar, "A Study on Potholes and Its Effects on Vehicular Traffic," International Journal of Creative Research Thoughts (IJCRT), pp. 258-263, 2018.
[18] A. K. Bruno and F. Samuel, "Analytical modelling of dump truck tire dynamic response to haul road surface excitations," International journal of mining reclamation and environment, pp. 1-18, 2018.
[19] E. D. Llyod, "Heavy Vehicle Suspensions-Testing adn Analysis," School of Built Environment and Engineering-Queensland University of Technology, Queensland, 2010.
[20] J. Soukup, J. Skočilas, B. Skočilasová and J. Dižo, "Vertical Vibration of Two Axle Railway Vehicle," Proceedia Engineering, pp. 25-32, 2017.
[21] L. V. Quynh, V. T. Hien and N. T. Cong, "Influence of Tire Parameters of a Semi-Trailer Truck on Road Surface Friendliness," International Research Journal of Engineering Technology (IRJET), pp. 3674-3678, 2019.
[22] V. Muluka, "Optimal Suspension Damping and Axle Vibration Absorber for Reduction of Dynamic Tire Loads," Bell & Howell Information and Learning, Canada, 1998.
[23] J. K. Junias, F. N. Nangolo and P. T. Johannes, "Effects of General Asymmetries on Heavy Vehicles Vertical Displacement Dynamic Response," International Journal of Engineering Research and Technology (IJERT) (Under Review), 2023.