Modelling of Truck Tire–Rim Slip on Sandy Loam Using Advanced Computational Techniques

Author:

Collings William1,El-Sayegh Zeinab1ORCID,Ren Jing2,El-Gindy Moustafa1ORCID

Affiliation:

1. Department of Automotive and Mechatronics Engineering, Faculty of Engineering and Applied Science, Ontario Tech University, Oshawa, ON L1G 0C5, Canada

2. Department of Electrical, Computer and Software Engineering, Faculty of Engineering and Applied Science, Ontario Tech University, Oshawa, ON L1G 0C5, Canada

Abstract

Vehicles often experience low tire pressures and high torques in off-road operations, making tire–rim slip likely. Tire–rim slip is undesirable relative rotation between the tire and rim, which, in this study, is measured by the relative tire–rim slip rate. There is little research on the effect of different terrains on tire–rim slip despite its significance for off-road driving; therefore, this topic was explored through Finite Element Analysis (FEA) simulations. An upland sandy loam soil was modelled and calibrated using Smoothed-Particle Hydrodynamics (SPH), and then a Regional Haul Drive (RHD) truck tire was simulated driving over this terrain, with a drawbar load added to increase drive torque. To examine their effects, five parameters were changed: tire–rim friction coefficient, longitudinal wheel speed, drawbar load, vertical load, and inflation pressure. The simulations showed that increasing the tire–rim friction coefficient and the inflation pressure decreased the tire–rim slip while increasing the vertical and drawbar loads increased the tire–rim slip. Varying the longitudinal wheel speed had no significant effect. Tire–rim slip was more likely to occur on the soil because it happened at lower drawbar loads on the soil than on the hard surface. These research results increased knowledge of tire–rim slip mechanics and provided a foundation for exploring tire–rim slip on other terrains, such as clays or sands.

Publisher

MDPI AG

Reference49 articles.

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3. General Motors (2021, April 23). Vibration Shortly After Tires are Mounted/Preventing Vibration from Wheel Slip (Tire Sliding on Wheel), 12-03-10-001B, Available online: https://static.nhtsa.gov/odi/tsbs/2014/MC-10137841-9999.pdf.

4. Nitto Tire (2021, April 29). Consumer Complaints for Vibration—Tire/Rim Slip, NTSD-12-015. Available online: https://www.nittotire.com/media/55ibthri/techbulletin_ntsd_12-015-rev-3.pdf.

5. Modelling of Off-Road Truck Tire-Rim Slip Using Finite Element Analysis;Collings;SAE Int. J. Adv. Curr. Pract. Mobil.,2022

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