Optimisation of Active Suspension Control Inputs for Improved Performance of Active Safety Systems
Vehicle System Dynamics, Vol. 56, No. 1 pp. 1-262017A collocation-type control variable optimisation method is used to investigate the extent to which the fully active suspension (FAS) can be applied to improve the vehicle electronic stability control (ESC) performance and reduce the braking distance. First, the optimisation approach is applied to the scenario of vehicle stabilization during the sine-with-dwell manoeuvre. The results are used to provide insights into different FAS control mechanisms for vehicle performance improvements related to responsiveness and yaw rate error reduction indices. The FAS control performance is compared to performances of the standard ESC system, optimal active brake system and combined FAS and ESC configuration. Second, the optimisation approach is employed to the task of FAS-based braking distance reduction for straight-line vehicle motion. Here, the scenarios of uniform and longitudinally or laterally non-uniform tyre-road friction coefficient are considered. The influences of limited ABS actuator bandwidth and limit-cycle ABS behaviour are also analyzed. The optimisation results indicate that the FAS can provide competitive stabilization performance and improved agility when compared to the ESC system, and that it can reduce the braking distance by up to 5% for distinctively non-uniform friction conditions. Fully active suspension; optimisation; analysis; anti-lock braking systems; electronic stability control; collocation methodUpravljanje dinamikom vozila uklj. ABS/TCSUpravljanje dinamikom vozilaOptimalno upravljanje aktivnim ovjesima
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Vehicle System Dynamics, Vol. 56, No. 1 pp. 1-26
2017
Cited by 21
▾
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[4] Optimal design of hedge-algebras–based controller for vibration control of vehicle suspension systems🔗J. Syst. Control. Eng., 2023
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[5] Parallel Active Link Suspension: Full Car Application With Frequency-Dependent Multiobjective Control Strategies🔗IEEE Transactions on Control Systems Technology, 2022
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[6] Control strategy for vibration suppression of a vehicle multibody system on a bumpy road🔗Mechanism and Machine Theory, 2022
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[8] Integration of Active Tilting Control and Full-Wheel Steering Control System on Vehicle Lateral Performance🔗International journal of automotive technology, 2021
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[10] Numerical investigation on the aerodynamic resistances of double-unit trains with different gap lengths🔗Engineering Applications of Computational Fluid Mechanics, 2021
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[11] Analytical and Experimental Evaluation of Various Active Suspension Alternatives for Superior Ride Comfort and Utilization of Autonomous Vehicles🔗Journal of Autonomous Vehicles and Systems, 2020
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[12] On the model-based design of front-to-total anti-roll moment distribution controllers for yaw rate tracking🔗Vehicle System Dynamics, 2020
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[15] Multi-objective optimisation of hydro-pneumatic suspension with gas–oil emulsion for heavy-duty vehicles🔗Vehicle System Dynamics, 2020
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[16] A study on the frontal oblique collision-induced derailment mechanism in subway vehicles🔗Proceedings of the Institution of mechanical engineers. Part F, journal of rail and rapid transit, 2020
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[17] Dynamic Rollover Prediction of Heavy Vehicles Considering Critical Frequency🔗Automotive Innovation, 2020
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[18] Study on Rollover Index and Stability for a Triaxle Bus🔗Chinese Journal of Mechanical Engineering, 2019