转矩矢量控制在操纵极限下自动避碰中的优势

IF 7.1 2区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Alberto Bertipaglia;Davide Tavernini;Umberto Montanaro;Mohsen Alirezaei;Riender Happee;Aldo Sorniotti;Barys Shyrokau
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引用次数: 0

摘要

本文提出了一种基于非线性模型预测轮廓控制的融合运动重规划、路径跟踪和车辆稳定性的避碰新方法。采用扭矩矢量控制能力,所提出的控制器能够稳定车辆在规避操作的限制。采用非线性双轨车辆模型和扩展的菲亚拉轮胎模型来捕获非线性耦合的纵向和横向动力学。优化的控制输入是转向角度和四个纵向车轮力,以尽量减少在安全情况下的跟踪误差,并在紧急情况下最大限度地提高车辆与障碍物的距离。这些优化的纵向力产生额外的直接偏航力矩,增强车辆的横向敏捷性,有助于避障和保持稳定性。利用轮胎摩擦循环对轮胎纵向受力进行约束。所提出的控制器已在快速原型硬件上进行了测试,以证明其实时性。在实验数据验证的高保真仿真环境中,我们提出的方法成功地避开了障碍物并保持了车辆的稳定性。它优于两个基线控制器:一个没有扭矩矢量,另一个没有碰撞避免优先级。此外,我们证明了所提出的方法对车辆参数变化、道路摩擦、感知和定位误差的鲁棒性。对每个变量的影响进行统计评估,以评估其对性能的影响,为未来的控制器设计提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the Benefits of Torque Vectoring for Automated Collision Avoidance at the Limits of Handling
This paper presents a novel approach integrating motion replanning, path tracking and vehicle stability for collision avoidance using nonlinear Model Predictive Contouring Control. Employing torque vectoring capabilities, the proposed controller is able to stabilise the vehicle in evasive manoeuvres at the limit of handling. A nonlinear double-track vehicle model, together with an extended Fiala tyre model, is used to capture the nonlinear coupled longitudinal and lateral dynamics. The optimised control inputs are the steering angle and the four longitudinal wheel forces to minimise the tracking error in safe situations and maximise the vehicle-to-obstacle distance in emergency manoeuvres. These optimised longitudinal forces generate an additional direct yaw moment, enhancing the vehicle's lateral agility and aiding in obstacle avoidance and stability maintenance. The longitudinal tyre forces are constrained using the tyre friction cycle. The proposed controller has been tested on rapid prototyping hardware to prove real-time capability. In a high-fidelity simulation environment validated with experimental data, our proposed approach successfully avoids obstacles and maintains vehicle stability. It outperforms two baseline controllers: one without torque vectoring and another one without collision avoidance prioritisation. Furthermore, we demonstrate the robustness of the proposed approach to vehicle parameter variations, road friction, perception, and localisation errors. The influence of each variation is statistically assessed to evaluate its impact on the performance, providing guidelines for future controller design.
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来源期刊
CiteScore
6.00
自引率
8.80%
发文量
1245
审稿时长
6.3 months
期刊介绍: The scope of the Transactions is threefold (which was approved by the IEEE Periodicals Committee in 1967) and is published on the journal website as follows: Communications: The use of mobile radio on land, sea, and air, including cellular radio, two-way radio, and one-way radio, with applications to dispatch and control vehicles, mobile radiotelephone, radio paging, and status monitoring and reporting. Related areas include spectrum usage, component radio equipment such as cavities and antennas, compute control for radio systems, digital modulation and transmission techniques, mobile radio circuit design, radio propagation for vehicular communications, effects of ignition noise and radio frequency interference, and consideration of the vehicle as part of the radio operating environment. Transportation Systems: The use of electronic technology for the control of ground transportation systems including, but not limited to, traffic aid systems; traffic control systems; automatic vehicle identification, location, and monitoring systems; automated transport systems, with single and multiple vehicle control; and moving walkways or people-movers. Vehicular Electronics: The use of electronic or electrical components and systems for control, propulsion, or auxiliary functions, including but not limited to, electronic controls for engineer, drive train, convenience, safety, and other vehicle systems; sensors, actuators, and microprocessors for onboard use; electronic fuel control systems; vehicle electrical components and systems collision avoidance systems; electromagnetic compatibility in the vehicle environment; and electric vehicles and controls.
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