Performance Improvement of Active Suspension System Collaborating with an Active Airfoil Based on a Quarter-Car Model

Vehicles Pub Date : 2024-07-24 DOI:10.3390/vehicles6030060
Syed Babar Abbas, I. Youn
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Abstract

This study presents an effective control strategy for improving the dynamic performance index of a two degrees-of-freedom (DOF) quarter-car model equipped with an active suspension system that collaborates with an active aerodynamic surface, using optimal control theory. The model takes several road excitations as input and applies an optimal control law to improve the ride comfort and road-holding capability, which are otherwise in conflict. MATLAB® (R2024a) simulations are carried out to evaluate the time and frequency domain characteristics of the quarter-car active suspension system. Individual performance indices in the presence of an active aerodynamic surface are calculated based on mean squared values for different sets of weighting factors and compared with those of passive and active suspension systems. From the viewpoint of total performance, the overall results show that the proposed control strategy enhances the performance index by approximately 70–80% compared to the active suspension system.
基于四轮驱动汽车模型的主动悬挂系统与主动翼面的性能改进
本研究提出了一种有效的控制策略,利用最优控制理论改善配备主动悬挂系统的两自由度(DOF)1/4 汽车模型的动态性能指标。该模型将若干路面激励作为输入,并应用最优控制法则来改善乘坐舒适性和路面保持能力,否则这两者会发生冲突。MATLAB® (R2024a) 仿真评估了四分之一车厢主动悬挂系统的时域和频域特性。根据不同加权系数集的均方值,计算了存在主动空气动力学表面时的各项性能指标,并与被动和主动悬架系统的性能指标进行了比较。从总体性能的角度来看,总体结果表明,与主动悬架系统相比,建议的控制策略可将性能指标提高约 70-80%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
4.10
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