Handling of tire pressure variation in autonomous vehicles: an integrated estimation and control design approach

T. Hegedüs, Dániel Fényes, B. Németh, P. Gáspár
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引用次数: 6

Abstract

Tire pressure has a high impact on the tire-road contact because it influences the characteristics of the tire forces. During the maneuvering of the vehicle the pressures of the tires may decrease over time, which results in performance degradation or the loss of controllability. This paper proposes a novel integration of tire pressure estimation and path-following control design based on machine learning and Linear Parameter-Varying (LPV) methods. In the estimation process the vehicle dynamic signals, which are available from the conventional on-board sensors, are fused. The values of the estimated tire pressures are incorporated in the LPV control as scheduling variables. The results of the control system are the steering and the differential drive interventions on the vehicle. The effectiveness of the method is illustrated through comprehensive simulation scenarios through the CarMaker simulation enviroment.
自动驾驶汽车胎压变化的处理:一种综合估计和控制设计方法
轮胎压力对轮胎与路面的接触有很大的影响,因为它影响着轮胎受力的特性。在车辆的机动过程中,轮胎的压力可能随着时间的推移而降低,从而导致性能下降或失去可控性。本文提出了一种基于机器学习和线性参数变化(LPV)方法的轮胎压力估计和路径跟踪控制设计的新方法。在估计过程中,对来自传统车载传感器的车辆动态信号进行融合处理。估计的轮胎压力值作为调度变量被纳入LPV控制。控制系统的结果是对车辆的转向和差动驱动干预。通过汽车制造商仿真环境的综合仿真场景,验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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