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Active control of an innovative seat suspension system with acceleration measurement based friction estimation

机译:具有基于加速度测量的摩擦估计的创新型座椅悬架系统的主动控制

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In this paper, an innovative active seat suspension system for vehicles is presented. This seat suspension prototype is built with two low cost actuators each of which has one rotary motor and one gear reducer. A H-infinity controller with friction compensation is designed for the seat suspension control system where the friction is estimated and compensated based on the measurement of seat acceleration. This principal aim of this research was to control the low frequency vibration transferred or amplified by the vehicle (chassis) suspension, and to maintain the passivity of the seat suspension at high frequency (isolation vibration) while taking into consideration the trade-off between the active seat suspension cost and its high frequency performance. Sinusoidal excitations of 1-4.5 Hz were applied to test the active seat suspension both when controlled and when uncontrolled and this is compared with a well-tuned passive heavy duty vehicle seat suspension. The results indicate the effectiveness of the proposed control algorithm within the tested frequencies. Further tests were conducted using the excitations generated from a quarter-car model under bump and random road profiles. The bump road tests indicate the controlled active seat suspension has good transient response performance. The Power Spectral Density (PSD) method and ISO 2631-1 standards were applied to analyse the seat suspension's acceleration under random road conditions. Although some low magnitude and high frequency noise will inevitably be introduced by the active system, the weighted-frequency Root Mean Square (RMS) acceleration shows that this may not have a large effect on ride comfort. In fact, the ride comfort is improved from being an 'a little uncomfortable' to a 'not uncomfortable' level when compared with the well-tuned passive seat suspension. This low cost active seat suspension design and the proposed controller with the easily measured feedback signals are very practical for real applications. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文提出了一种创新的车辆主动式座椅悬架系统。该座椅悬架原型由两个低成本的执行器组成,每个执行器都有一个旋转电机和一个齿轮减速器。一个带摩擦补偿的H-infinity控制器是为座椅悬架控制系统设计的,该系统基于座椅加速度的测量值来估计和补偿摩擦。这项研究的主要目的是控制由车辆(底盘)悬架传递或放大的低频振动,并在考虑到两者之间的权衡取舍的情况下保持座椅悬架在高频下的被动性(隔离振动)。主动座椅悬架成本及其高频性能。在控制状态和非控制状态下,都采用1-4.5 Hz的正弦激励来测试主动式座椅悬架,并将其与经过良好调整的被动重型汽车座椅悬架进行比较。结果表明所提出的控制算法在测试频率范围内的有效性。使用四分之一车模型在颠簸和随机道路轮廓下产生的激励进行了进一步的测试。颠簸测试表明,受控的主动式座椅悬架具有良好的瞬态响应性能。功率谱密度(PSD)方法和ISO 2631-1标准用于分析随机道路条件下座椅悬架的加速度。尽管主动系统不可避免地会引入一些低幅值和高频噪声,但加权均方根(RMS)加速度表明,这可能不会对乘坐舒适性产生很大影响。实际上,与经过良好调整的被动式座椅悬架相比,乘坐舒适性从“有点不舒服”提高到“不舒服”水平。这种低成本的主动式座椅悬架设计以及带有易于测量的反馈信号的建议控制器对于实际应用非常实用。 (C)2016 Elsevier Ltd.保留所有权利。

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