APPRAISAL OF TAKAGI–SUGENO TYPE NEURO-FUZZY NETWORK SYSTEM WITH A MODIFIED DIFFERENTIAL EVOLUTION METHOD TO PREDICT NONLINEAR WHEEL DYNAMICS CAUSED BY ROAD IRREGULARITIES

Author:

Taghavifar Hamid1,Motlagh Asad Modarres1,Mardani Aref1,Hassanpour Ali1,Hosseinloo Ashkan Haji2,Taghavifar Leyla3,Wei Chongfeng4

Affiliation:

1. Urmia University

2. Massachusetts Institute of Technology

3. Islamic Azad University

4. University of Birmingham

Abstract

Wheel dynamics play a substantial role in traversing and controlling the vehicle, braking, ride comfort, steering, and maneuvering. The transient wheel dynamics are difficult to be ascertained in tire–obstacle contact condition. To this end, a single-wheel testing rig was utilized in a soil bin facility for provision of a controlled experimental medium. Differently manufactured obstacles (triangular and Gaussian shaped geometries) were employed at different obstacle heights, wheel loads, tire slippages and forward speeds to measure the forces induced at vertical and horizontal directions at tire–obstacle contact interface. A new Takagi–Sugeno type neuro-fuzzy network system with a modified Differential Evolution (DE) method was used to model wheel dynamics caused by road irregularities. DE is a robust optimization technique for complex and stochastic algorithms with ever expanding applications in real-world problems. It was revealed that the new proposed model can be served as a functional alternative to classical modeling tools for the prediction of nonlinear wheel dynamics.

Publisher

Vilnius Gediminas Technical University

Subject

Mechanical Engineering,Automotive Engineering

Reference20 articles.

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3. Fleetwood, K. 2004.An introduction to differential evolution, in One-day Symposium: Multi-Agent Systems and Machine Learning, 26 November 2004, University of Queensland, Australia, 40 p. Available from Internet: http://www.maths.uq.edu.au/MASCOS/Multi-Agent04/Fleetwood.pdf

4. An experimental study on the impact of the rear track width on the stability of agricultural tractors using a test bench

5. Predicting optimum cure time of rubber compounds by means of ANFIS

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