Manufacturing Technology 2021, 21(5):634-639 | DOI: 10.21062/mft.2021.083

The adhesion force change of an experimental road vehicle

Petr Jilek ORCID..., Jan Berg ORCID...
University of Pardubice, Faculty of Transport Engineering, Studentská 95, 532 10 Pardubice. Czech Republic

The Article deals with the controlled influence of the adhesive force in contact of the road vehicle’s wheel with the road. The first section shows how the adhesive force is reduced. The next step is the familiarization with the experimental vehicle with the Alternative SkidCar, where experimental measurements were carried out, assessment of the advantages and disadvantages of the experimental vehicle with the Alternative SkidCar and the drive on the sliding surface following the experimental test methods. The objective of the article is to determine how great the difference in vehicle behav-iour is when the adhesive force changes by modifying the radial reaction and the change in the coeffi-cient of adhesion.

Keywords: Adhesive force, Experimental measurement, Skid of the vehicle, Vehicle stability

Received: June 15, 2021; Revised: September 11, 2021; Accepted: October 21, 2021; Prepublished online: October 21, 2021; Published: November 25, 2021  Show citation

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Jilek P, Berg J. The adhesion force change of an experimental road vehicle. Manufacturing Technology. 2021;21(5):634-639. doi: 10.21062/mft.2021.083.
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References

  1. NOVIKOV, I., LAZAREV, D. (2017). Experimental Installation for Calculation of Road Adhesion Coefficient of Locked Car Wheel, 12th international conference - organization and traffic safety management in large cities spbotsic-2016, St Petersburg, Russia, 20, 463-467. Go to original source...
  2. ONAT, A., VOLTR, P. (2020). Particle swarm optimization-based parametrization of adhesion and creep force models for simulation and modelling of railway vehicle systems with traction. Simulation modelling practice and theory, 99, 156-163. Go to original source...
  3. KLIMENDA, F., SVOBODA, M., RYCHLIKOVA, L., PETRENKO, A. (2015). Investigation of Vertical Vibration of a Vehicle Guide Driving Through a Horizontal Curve, Manufacturing Technology ISSN 1213-2489 vol. 15, pp 143-148 Go to original source...
  4. SEGLA, ©., KAMPO, J. (2018). The Role of Modelling of Road Unevenness's in Vehicle Dynamics, Manufacturing Technology, Vol. 18, No. 1 pp. 124-129, ISSN: 1213-2489] Go to original source...
  5. JILEK, P., ©EFÈÍK, I., VERNER, J., BERG, J. (2019). System allowing adhesion force change of road vehicle, 18th International Scientific Conference Engineering for Rural Development, Jelgava, Latvia, pp. 1876-1882. Go to original source...
  6. BAKO©OVÁ A., KRMELA J., HANDRIK M. (2020). Computing of truss structure using MATLAB. Manufacturing Technology ISSN 1213-2489, vol. 20 (3), pp. 279-285. Go to original source...
  7. SÁGA, M., VA©KO, M., HANDRIK, M., KOPAS, P. (2019). Contribution to random vibration numerical simulation and optimisation of nonlinear mechanical systems. In: Scientific Journal of Silesian University of Technology. Series Transport, vol. 103, pp. 143-154. Go to original source...
  8. SONG, B. (2013). Cooperative lateral vehicle control for autonomous valet parking. International journal of automotive technology, vol.14 (4), pp. 633-640. Go to original source...
  9. JÖRNSEN, R., HELMUT, S. (2001). The automotive chassis engineering principles: chassis and vehicle overall, wheel suspensions and types of drive, axle kinematics and elastokinematics, steering, springing, tyres, construction and calculations advice. 2nd ed. Oxford: Butterworth Heinemann. ISBN 07-506-5054-0
  10. KRMELA, J. (2008). Computational modelling of tyres considering operating and safety requirements. Communications. Scientific Letters of the University of ®ilina. ®ilina. ISSN 1335-4205. Go to original source...
  11. JILEK, P., NÌMEC J. (2021). System for changing adhesion conditions in experimental road vehicle. International journal of automotive technology, ISSN:1229-9138, vol. 22(3), pp. 779-785. Go to original source...
  12. CABAN, J. , TURSKI, A., NIEOCZYM, A., TARKOWSKI, S., JEREB, B. (2019). Impact of specific factors on the state of the tire pressure value. The Archives of Automotive Engineering - Archiwum Motoryzacji, eISSN: 2084-476X, vol. 85(3), pp. 137-148.

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