Loading…

Integrated optimization for mechanical elastic wheel and suspension based on an improved artificial fish swarm algorithm

•A new factor of the radial stiffness of mechanical elastic wheel is proposed and studied.•An integrated optimization is introduced combining MEW and hydro-pneumatic suspension.•Iterative deletion artificial fish swarm algorithm is proposed and applied to the multi-objective optimization. This paper...

Full description

Saved in:
Bibliographic Details
Published in:Advances in engineering software (1992) 2019-11, Vol.137, p.102722, Article 102722
Main Authors: Xu, Han, Zhao, YouQun, Ye, Chao, Lin, Fen
Format: Article
Language:English
Subjects:
Citations: Items that this one cites
Items that cite this one
Online Access:Get full text
Tags: Add Tag
No Tags, Be the first to tag this record!
Description
Summary:•A new factor of the radial stiffness of mechanical elastic wheel is proposed and studied.•An integrated optimization is introduced combining MEW and hydro-pneumatic suspension.•Iterative deletion artificial fish swarm algorithm is proposed and applied to the multi-objective optimization. This paper aims to provide a baseline for the future optimum design of the Mechanical Elastic Wheel (MEW), and improve the ride comfort of the vehicle equipped with the MEW. A new factor δ is introduced, which is the ratio of the length of hinge groups to the thickness of elastic wheel. The influence of δ on the MEW radial stiffness is studied based on finite element analyses and experimental verification. The stiffness characteristics with δ are fitted by means of artificial neural network. A quarter-car model is established, combining the MEW and the hydro-pneumatic suspension. A multi-objective optimization is proposed, where an improved Pareto Artificial Fish Swarm Algorithm is applied to attain the appropriate parameters of both suspension and MEW. The results after optimization illustrate that the root mean square value of body vertical acceleration, suspension working space and dynamic tyre load are reduced by 43.88%, 24.38% and 46.46% respectively. In addition, the power spectral densities of three indexes are all dropped. This method proposed by this paper not only offers an optimal matching between the MEW and the hydro-pneumatic suspension, but also has the reference value for improving vehicle ride comfort.
ISSN:0965-9978
DOI:10.1016/j.advengsoft.2019.102722