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Robust estimation of maximum tire-road friction coefficient considering road surface irregularity

机译:考虑路面不平顺性的最大轮胎-道路摩擦系数的稳健估计

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An accurate estimation of the maximum tire-road friction coefficient may provide higher performance in a vehicle active safety control system. Unfortunately, real-time tire-road friction coefficient estimation is costly and necessitates additional sensors that must be installed and maintained at all times. This paper proposes an advanced longitudinal tire-road friction coefficient estimation method that is capable of considering irregular road surfaces. The proposed algorithm uses a stiffness based estimation method, however, unlike previous studies, improvements were made by suggesting a third order model to solve problems related to nonlinear mu-slip curve. To attain the tire-road friction coefficient, real-time normalized force is obtained from the force estimator as exerted from the tire in the low slip region using the recursive least squares method. The decisive aspect of using the suggested algorithm lies in its low cost and versatility. It can be used under irregular road conditions due to its capability of easily obtaining wheel speed and acceleration values from production cars. The newly improved algorithm has been verified to computer simulations as well as compact size cars on dry asphalt conditions.
机译:在车辆主动安全控制系统中,最大轮胎-道路摩擦系数的准确估计可以提供更高的性能。不幸的是,实时轮胎-道路摩擦系数估算成本很高,并且必须始终安装和维护附加传感器。本文提出了一种能够考虑不规则路面的高级纵向轮胎-道路摩擦系数估算方法。所提出的算法使用基于刚度的估计方法,但是,与先前的研究不同,通过提出三阶模型来解决与非线性mu-slip曲线有关的问题,从而进行了改进。为了获得轮胎与道路的摩擦系数,使用递归最小二乘法从低滑动区域中的轮胎施加的力估算器获得实时归一化力。使用建议算法的决定性方面在于其低成本和多功能性。由于它能够轻松地从量产车获得车轮速度和加速度值,因此可以在不规则的道路条件下使用。新改进的算法已通过计算机仿真以及在干燥沥青条件下的紧凑型汽车的验证。

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