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Adaptive Road Profile Estimation in Semiactive Car Suspensions

机译:半主动式汽车悬架中的自适应道路轮廓估计

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The enhancement of passengers’ comfort and their safety are part of the constant concerns for car manufacturers. Semiactive damping control systems have emerged to adapt the suspension features, where the road profile is one of the most important factors determining the automotive vehicle performance. Because direct measurements of the road profile represent expensive solutions and are susceptible to contamination (e.g. using laser and other visual sensors), this paper proposes a novel road profile estimator that offers the essential information (road roughness and its frequency) for the adjustment of the vehicle dynamics using conventional sensors, such as accelerometers or displacement/velocity sensors easy to mount, cheap, and useful to estimate all suspension variables. Based on the -parametrization approach, an adaptive observer estimates the dynamic road signal; afterward, a Fourier analysis is used to compute the road roughness condition online and to perform an International Organization for Standardization (ISO) 8608 classification. Experimental results on the rear-left corner of a 1:5 scale vehicle, equipped with electro-rheological (ER) dampers, have been used to validate the proposed road profile estimation method. Different ISO road classes evaluate the performance of the proposed algorithm, whose results show that any road can be identified successfully at least 70% of the time with a false alarm rate lower than 5%; the general accuracy of the road classifier is 95%. A second test with variable vehicle velocity shows the importance of the online frequency estimation to adapt the road estimation algorithm to any driving velocity; in this test, the road is correctly estimated in 868 of 1042 m (an error of 16.7%). Finally, the adaptability of the parametric road estimator to the semiactiveness property of the ER damper is tested at differ- nt damping coefficients.
机译:提升乘客的舒适度和安全性是汽车制造商不断关注的问题。半主动阻尼控制系统已经出现,以适应悬架特征,其中道路轮廓是决定汽车性能的最重要因素之一。由于直接测量道路轮廓代表着昂贵的解决方案,并且容易受到污染(例如,使用激光和其他视觉传感器),因此本文提出了一种新颖的道路轮廓估算器,该估算器提供了必要的信息(道路粗糙度及其频率)以用于调整使用传统传感器(例如加速度计或位移/速度传感器)的车辆动力学特性,易于安装,便宜且对估计所有悬架变量有用。基于-参数化方法,自适应观察者估算动态道路信号;之后,使用傅里叶分析在线计算道路不平整状况,并执行国际标准化组织(ISO)8608分类。在配备电动流变(ER)减震器的1:5比例车辆的左后角的实验结果已用于验证所提出的道路轮廓估计方法。不同的ISO道路等级评估了该算法的性能,其结果表明,至少70%的时间可以成功识别任何道路,且误报率低于5%;道路分类器的一般准确性为95%。车速可变的第二项测试表明,在线频率估算对于使道路估算算法适应任何行驶速度的重要性;在该测试中,正确估计了1042 m的868条道路(误差为16.7%)。最后,在不同的阻尼系数下测试了参数道路估计器对ER阻尼器的半主动性的适应性。

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