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ANALYTICAL REDUNDANCY BASED FAULT TOLERANT CONTROL OF A STEER-BY-WIRE SYSTEM

机译:线控转向系统的基于冗余度的容错控制

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摘要

This paper presents a novel observer-based analytical redundancy for a steer-by-wire (SBW) system. In order to achieve high level of reliability for a By-Wire system, double, triple, or even quadruple redundant sensors, actuators, communication networks, and controllers are needed. But this added hardware increases the overall cost of the vehicle. This paper utilizes a novel analytical redundancy methodology to reduce the total number of redundant road-wheel angle (RWA) sensors in a triply redundant RWA-based SBW system, while maintaining a high level of reliability. The self-aligning torque at road-tire interface due to the steering dynamics has been modeled as a function of the linear vehicle states. A full state observer was designed using the combined model of the vehicle and SBW system to estimate the vehicle body side slip angle. The steering angle was then estimated from the observed and measured states of the vehicle (body side slip angle and yaw rate) as well as the current input to the SBW electric motor(s). With at least two physical road-wheel angle sensors and the analytical estimation of the RWA value (which replaces the third physical sensor), a fault detection and isolation (FDI) algorithm was developed using a majority voting scheme. The FDI algorithm was then used to detect faulty sensor(s) in order to maintain safe drivability. The proposed analytical redundancy based fault detection & isolation algorithms and the linearized vehicle model were modeled in SIMULINK. Simulation of the proposed algorithm was performed for both single and multiple sensor faults. Simulation results show that the proposed analytical redundancy based fault detection and isolation algorithm provides the same level of fault tolerance as in an SBW system with full hardware redundancy against single point failures.
机译:本文提出了一种新颖的基于观测器的线控转向(SBW)系统分析冗余。为了实现By-Wire系统的高度可靠性,需要双倍,三倍甚至四倍的冗余传感器,执行器,通信网络和控制器。但是这种增加的硬件增加了车辆的总体成本。本文利用一种新颖的分析冗余方法来减少基于三重冗余RWA的SBW系统中的冗余车轮角(RWA)传感器的总数,同时保持较高的可靠性。由于转向动力学,在道路轮胎界面处的自对准扭矩已根据线性车辆状态建模。使用车辆和SBW系统的组合模型设计了一个全状态观察器,以估计车身侧滑角。然后,根据车辆的观察和测量状态(车身侧滑角和横摆率)以及输入到SBW电动机的电流估算转向角。通过至少两个物理车轮角传感器和RWA值的分析估计值(代替第三个物理传感器),使用多数表决方案开发了一种故障检测和隔离(FDI)算法。然后,将FDI算法用于检测故障传感器,以保持安全的驾驶性能。在SIMULINK中对提出的基于分析冗余的故障检测和隔离算法以及线性化车辆模型进行了建模。针对单个传感器故障和多个传感器故障都对提出的算法进行了仿真。仿真结果表明,所提出的基于分析冗余的故障检测和隔离算法提供的容错水平与具有针对单点故障的全硬件冗余的SBW系统相同。

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