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Preliminary Study of a Millimeter Wave FMCW InSAR for UAS Indoor Navigation

机译:用于UAS室内导航的毫米波FMCW InSAR的初步研究

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摘要

Small autonomous unmanned aerial systems (UAS) could be used for indoor inspection in emergency missions, such as damage assessment or the search for survivors in dangerous environments, e.g., power plants, underground railways, mines and industrial warehouses. Two basic functions are required to carry out these tasks, that is autonomous GPS-denied navigation with obstacle detection and high-resolution 3D mapping with moving target detection. State-of-the-art sensors for UAS are very sensitive to environmental conditions and often fail in the case of poor visibility caused by dust, fog, smoke, flames or other factors that are met as nominal mission scenarios when operating indoors. This paper is a preliminary study concerning an innovative radar sensor based on the interferometric Synthetic Aperture Radar (SAR) principle, which has the potential to satisfy stringent requirements set by indoor autonomous operation. An architectural solution based on a frequency-modulated continuous wave (FMCW) scheme is proposed after a detailed analysis of existing compact and lightweight SAR. A preliminary system design is obtained, and the main imaging peculiarities of the novel sensor are discussed, demonstrating that high-resolution, high-quality observation of an assigned control volume can be achieved.
机译:小型自主无人机系统(UAS)可用于紧急任务的室内检查,例如损害评估或在危险环境(例如电厂,地下铁路,矿山和工业仓库)中寻找幸存者。执行这些任务需要两个基本功能,即具有障碍物检测功能的自主GPS定位导航和具有运动目标检测功能的高分辨率3D映射。 UAS的最先进传感器对环境条件非常敏感,并且在室内操作时由于灰尘,雾气,烟雾,火焰或其他因作为标称任务场景而满足的其他因素而导致的能见度不佳的情况下,经常会发生故障。本文是关于基于干涉式合成孔径雷达(SAR)原理的创新雷达传感器的初步研究,该雷达传感器有可能满足室内自主运行设定的严格要求。在对现有紧凑轻量SAR进行详细分析之后,提出了一种基于调频连续波(FMCW)方案的体系结构解决方案。获得了初步的系统设计,并对新型传感器的主要成像特性进行了讨论,证明可以实现对指定控制量的高分辨率,高质量观察。

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