Analytical results in transient brush tyre models: theory for large camber angles and classic solutions with limited friction
Journal article, 2022

This paper establishes new analytical results in the mathematical theory of brush tyre models. In the first part, the exact problem which considers large camber angles is analysed from the perspective of linear dynamical systems. Under the assumption of vanishing sliding, the most salient properties of the model are discussed with some insights on concepts as existence and uniqueness of the solution. A comparison against the classic steady-state theory suggests that the latter represents a very good approximation even in case of large camber angles. Furthermore, in respect to the classic theory, the more general situation of limited friction is explored. It is demonstrated that, in transient conditions, exact sliding solutions can be determined for all the one-dimensional problems. For the case of pure lateral slip, the investigation is conducted under the assumption of a strictly concave pressure distribution in the rolling direction.

Tyre modelling

Transient tyre dynamics

Brush models

Transient rolling contact

Author

Luigi Romano

Chalmers, Mechanics and Maritime Sciences (M2), Vehicle Engineering and Autonomous Systems

Francesco Timpone

University of Naples Federico II

Fredrik Bruzelius

Chalmers, Mechanics and Maritime Sciences (M2), Vehicle Engineering and Autonomous Systems

The Swedish National Road and Transport Research Institute (VTI)

Bengt J H Jacobson

Chalmers, Mechanics and Maritime Sciences (M2), Vehicle Engineering and Autonomous Systems

Meccanica

0025-6455 (ISSN) 1572-9648 (eISSN)

Vol. 57 1 165-191

COVER – Real world CO2 assessment and Vehicle enERgy efficiency

Swedish Energy Agency (2017-007895), 2018-01-01 -- 2021-12-31.

VINNOVA (2017-007895), 2018-01-01 -- 2021-12-31.

Driving Forces

Sustainable development

Areas of Advance

Transport

Subject Categories

Applied Mechanics

Computational Mathematics

Other Mathematics

Vehicle Engineering

Mathematical Analysis

DOI

10.1007/s11012-021-01422-3

More information

Latest update

2/2/2024 8