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Research Article | Open Access

Stochastic sampled-data multi-objective control of active suspension systems for in-wheel motor driven electric vehicles

School of Science, Computing and Engineering Technologies, Swinburne University of Technology, Melbourne, VIC 3122, Australia

Peer review under responsibility of Chongqing University.

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Abstract

This paper addresses the sampled-data multi-objective active suspension control problem for an in-wheel motor driven electric vehicle subject to stochastic sampling periods and asynchronous premise variables. The focus is placed on the scenario that the dynamical state of the half-vehicle active suspension system is transmitted over an in-vehicle controller area network that only permits the transmission of sampled data packets. For this purpose, a stochastic sampling mechanism is developed such that the sampling periods can randomly switch among different values with certain mathematical probabilities. Then, an asynchronous fuzzy sampled-data controller, featuring distinct premise variables from the active suspension system, is constructed to eliminate the stringent requirement that the sampled-data controller has to share the same grades of membership. Furthermore, novel criteria for both stability analysis and controller design are derived in order to guarantee that the resultant closed-loop active suspension system is stochastically stable with simultaneous H2 and H∞ performance requirements. Finally, the effectiveness of the proposed stochastic sampled-data multi-objective control method is verified via several numerical cases studies in both time domain and frequency domain under various road disturbance profiles.

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Journal of Automation and Intelligence
Pages 2-18

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Cite this article:
Ahmad I, Ge X, Han Q-L. Stochastic sampled-data multi-objective control of active suspension systems for in-wheel motor driven electric vehicles. Journal of Automation and Intelligence, 2024, 3(1): 2-18. https://doi.org/10.1016/j.jai.2023.12.002

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Received: 03 November 2023
Revised: 02 December 2023
Accepted: 22 December 2023
Published: 29 December 2023
© 2024 The Authors.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).