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Optimal fault-detection filter design for steer-by-wire vehicles.

机译:线控转向车辆的最佳故障检测滤波器设计。

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Steer-by-wire technology promises to deliver numerous benefits, both to auto manufacturers and end customers, making cars that are safer, more efficient, easier to design and manufacture, and more fun to drive. One of the most compelling aspects of steer-by-wire is the potential to improve the safety of vehicles. While the nominal role of a steering system is to reproduce the driver's steering command at the road wheels, a steer-by-wire system provides the opportunity for a software layer to intervene on behalf of the driver in dangerous driving situations. The simplest example of this is a car that could automatically counter-steer when starting to skid on wet or icy pavement, in order to prevent loss of control of the vehicle. In the case of higher-center of gravity vehicles, such as passenger vans and SUVs, where vehicle rollover becomes a significant safety issue, a steer-by-wire system could prevent the driver from executing a maneuver that would result in rollover.;Despite all of the benefits of steer-by-wire, there are no production vehicles with steer-by-wire on the road today. The potentially catastrophic nature of a steering system failure requires that any replacement for a conventional steering system be extremely reliable. One approach for achieving the necessary level of reliability relies upon a diagnostic system that can quickly and accurately detect and isolate a fault. This information is then used to switch over to a redundant component or a modified control law that can accommodate the fault. This strategy significantly relaxes the reliability requirements of the individual components in the system, without reducing the overall reliability of the system.;The research presented here demonstrates how a model-based diagnostic system can detect a wide range of potential steering system failures without the need for redundant sensors. In many cases the diagnostic system can detect a steering system fault at a level well below that of driver perception. The performance of this system is demonstrated experimentally on a full-scale steer-by-wire research vehicle, developed here at Stanford.;The task of diagnostic filter design can be posed as an optimization problem, using channel capacity as measure of diagnostic performance. This eliminates the need for hand-tuning and allows design and evaluation of the diagnostic system to precede final construction of the system to be diagnosed. The usefulness of channel capacity as a diagnostic performance metric is experimentally demonstrated, as it can differentiate filter designs that provide good spectral separation of fault information and noise, from those that do not, unlike existing diagnostic performance metrics.
机译:线控转向技术有望为汽车制造商和最终客户带来诸多好处,从而使汽车更安全,更高效,更易于设计和制造,并且驾驶更有趣。线控转向最引人注目的方面之一是提高车辆安全性的潜力。转向系统的名义作用是在车轮上再现驾驶员的转向指令,而线控转向系统则为软件层在危险驾驶情况下代表驾驶员进行干预提供了机会。最简单的例子是在潮湿或结冰的路面上开始打滑时可以自动反转向的汽车,以防止失去对车辆的控制。在高重心车辆(例如客货车和SUV)中,车辆的侧翻成为重要的安全问题,线控转向系统可能会阻止驾驶员执行可能导致侧翻的操纵。具备线控转向的所有优势,如今,没有任何一种采用线控转向的生产工具。转向系统故障的潜在灾难性性质要求对常规转向系统的任何替代都必须极其可靠。一种实现必要可靠性水平的方法取决于诊断系统,该系统可以快速而准确地检测和隔离故障。然后,此信息用于切换到可以容纳故障的冗余组件或修改后的控制规则。该策略显着放宽了系统中各个组件的可靠性要求,而又不降低系统的整体可靠性。此处提出的研究表明,基于模型的诊断系统如何能够在不需要转向的情况下检测到各种潜在的转向系统故障用于冗余传感器。在许多情况下,诊断系统可以以低于驾驶员感知水平的水平检测到转向系统故障。该系统的性能已在斯坦福大学开发的全尺寸线控转向研究实验车上进行了实验验证。诊断滤波器设计的任务可以被视为一个优化问题,使用通道容量作为诊断性能的度量。这消除了手动调整的需要,并允许在诊断系统的最终构造之前进行诊断系统的设计和评估。通过实验证明了信道容量作为诊断性能指标的有用性,因为它可以区分提供故障信息和噪声的良好频谱分离的滤波器设计与不提供这些信息的滤波器设计,这与现有的诊断性能指标不同。

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