Osprey: a mmWave approach to tire wear sensing

Akarsh Prabhakara, Vaibhav Singh, Swarun Kumar, Anthony G. Rowe
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引用次数: 31

Abstract

Tire wear is a leading cause of automobile accidents globally. Beyond safety, tire wear affects performance and is an important metric that decides tire replacement, one of the biggest maintenance expense of the global trucking industry. We believe that it is important to measure and monitor tire wear in all automobiles. Current approach to measure tire wear is manual and extremely tedious. Embedding sensor electronics in tires to measure tire wear is challenging, given the inhospitable temperature, pressure and dynamics of the tire. Further, off-tire sensors placed in the well such as laser range-finders are vulnerable to road debris that may settle in tire grooves. This paper presents Osprey, the first on-automobile, mmWave sensing system that can measure accurate tire wear continuously and is robust to road debris. Osprey's key innovation is to leverage existing, high volume, automobile mmWave RADAR, place it in the tire well of automobiles and observe reflections of the RADAR's signal from the tire surface and grooves to measure tire wear, even in the presence of debris. We achieve this through a super-resolution Inverse Synthetic Aperture RADAR algorithm that exploits the natural rotation of the tire and improves range resolution to sub-mm. We show how our system can eliminate debris by attaching specialized metallic structures in the grooves that behave as spatial codes and offer a unique signature, when coupled with the rotation of the tire. In addition to tire wear sensing, we demonstrate the ability to detect and locate unsafe, metallic foreign objects such as nails lodged in the tire. We evaluate Osprey on commercial tires mounted on mechanical, tire-rotation rig and passenger car. We test Osprey at different speeds, in the presence of different types of debris, different levels of debris, on different terrains, and different levels of automobile vibration. We achieve a median absolute tire wear error of 0.68 mm across all our experiments. Osprey also locates foreign objects lodged in the tire with an error of 1.7 cm and detects metallic foreign objects with an accuracy of 92%.
鱼鹰:毫米波方法轮胎磨损传感
轮胎磨损是全球汽车事故的主要原因。除了安全性之外,轮胎磨损还会影响性能,是决定轮胎更换的重要指标,而轮胎更换是全球卡车运输业最大的维护费用之一。我们认为,测量和监测所有汽车的轮胎磨损是很重要的。目前测量轮胎磨损的方法是手工的,而且非常繁琐。考虑到轮胎的温度、压力和动态,在轮胎中嵌入传感器来测量轮胎磨损是一项挑战。此外,安装在井内的非轮胎传感器(如激光测距仪)很容易受到道路碎屑的影响,这些碎屑可能会沉降到轮胎凹槽中。本文介绍了鱼鹰,第一个车载毫米波传感系统,可以连续准确测量轮胎磨损,并且对道路碎片具有鲁棒性。Osprey的关键创新是利用现有的大批量汽车毫米波雷达,将其放置在汽车的轮胎井中,观察雷达信号从轮胎表面和沟槽的反射,以测量轮胎磨损,即使存在碎片。我们通过一种超分辨率逆合成孔径雷达算法来实现这一目标,该算法利用轮胎的自然旋转,将距离分辨率提高到亚毫米。我们展示了我们的系统是如何通过在凹槽中附加专门的金属结构来消除碎片的,这些金属结构可以作为空间代码,并在与轮胎旋转相结合时提供独特的签名。除了轮胎磨损感测之外,我们还展示了检测和定位不安全金属异物(如钉在轮胎中的钉子)的能力。我们对安装在机械、轮胎旋转装置和乘用车上的商用轮胎进行了评估。我们以不同的速度、不同类型的碎片、不同程度的碎片、不同的地形和不同程度的汽车振动测试鱼鹰。我们在所有实验中获得了0.68 mm的绝对轮胎磨损误差中值。“鱼鹰”还能定位轮胎内的异物,误差为1.7厘米,探测金属异物的精度为92%。
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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