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Tyre-Road Adherence Conditions Estimation for Intelligent Vehicle Safety Applications

机译:智能车辆安全应用的轮胎 - 道路粘附条件估算

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It is well recognized in the automotive research community that knowledge of the real-time tyre-road friction conditions can be extremely valuable for intelligent safety applications, including design of braking, traction, and stability control systems. This paper presents a new development of an on-line tyre-road adherence estimation methodology and its implementation using both Burckhardt and LuGre tyre-road friction models. The proposed strategy first employs the recursive least squares to identify the linear parameterization (LP) form of Burckhardt model. The identified parameters provide through a Takagi-Sugeno (T-S) fuzzy system the initial values for the LuGre model. Then, it is presented a new large-scale optimization based estimation algorithm using the steady state solution of the partial differential equation (PDE) form of LuGre to obtain its parameters. Finally, real-time simulations in various conditions are provided to demonstrate the efficacy of the algorithm.
机译:它在汽车研究界中得到了很好的认可,知识实时轮胎 - 道路摩擦条件对于智能安全应用来说,包括制动,牵引力和稳定性控制系统的设计非常有价值。本文介绍了使用Burckhardt和Lugre轮胎摩擦模型的线轮胎道路粘附估算方法的新开发及其实施。所提出的策略首先使用递归最小二乘来识别Burckhardt模型的线性参数化(LP)形式。所识别的参数通过Takagi-sugeno(T-S)模糊系统提供Lugre模型的初始值。然后,使用Lugre的部分微分方程(PDE)形式的稳态解决方案介绍了一种新的大规模优化估计算法,以获得其参数。最后,提供了各种条件的实时模拟以证明算法的功效。

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