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Road excitation classification for semi-active suspension system based on system response

机译:基于系统响应的半主动悬架系统路励磁分类

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Vehicle performance is largely affected by the properties of the suspension system, where semi-active suspension has been widely used in mass production of vehicles owing to its characteristics such as internal stability and low energy consumption. To solve the contradiction between ride comfort and road handling, road estimation based semi-active suspension has received considerable attention in recent years. In order to provide accurate estimation for advanced control strategies applications, this paper aims to develop a new method that can provide precise road class estimation based on measurable suspension system response (i.e. sprung mass acceleration, unsprung mass acceleration and rattle space). The response signal is first decomposed using wavelet packet analysis, and features in both time and frequency domains are subsequently extracted. Then, minimum redundancy maximum relevance (mRMR) is utilized to select superior features. Finally, a probabilistic neural network (PNN) classifier is applied to determine road classification output. The most representative semi-active control strategy, i.e. skyhook control, is used to validate this method, and simulation results with varying conditions including different control parameters and sprung mass are compared. The results show that unsprung mass acceleration is most suitable for road classification, and more robust to varying conditions in comparison to other responses.
机译:车辆性能主要受悬架系统的性能影响,其中半主动悬架由于其特点,这些悬浮液被广泛用于车辆的大规模生产,因为其特点是内部稳定性和低能耗。为解决乘坐舒适和道路处理之间的矛盾,近年来,基于道路估计的半主动悬架得到了相当大的关注。为了提供高级控制策略应用的准确估计,本文旨在开发一种新方法,可以基于可测量的悬架系统响应(即簧盖质量加速,难以填充额加速度和拨浪鼓空间)提供精确的道路类估计。首先使用小波分组分析首先分解响应信号,随后提取两个时间和频率域中的特征。然后,利用最小冗余最大相关性(MRMR)来选择优越的功能。最后,应用概率神经网络(PNN)分类器来确定道路分类输出。最具代表性的半主动控制策略,即Skyhook控制,用于验证该方法,并比较具有不同控制参数和簧盖质量的不同条件的模拟结果。结果表明,与其他响应相比,Unsprung批量加速度最适合道路分类,更强大的变化条件。

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