Novel geolocation technology for geophysical sensors for detection and discrimination of unexploded ordnance

D. Grejner-Brzezinska, C. Toth, Hongxing Sun, Xiankun Wang, C. Rizos
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引用次数: 10

Abstract

Reliable and precise navigation technology is essential for robust detection and discrimination of unexploded ordnance (UXO) in a wide range of field conditions. The detection and remediation of munitions and explosives-of-concern (MEC) on ranges, munitions burning and open detonation areas, and burial pits is one of the US department of defensepsilas (DoD) most pressing environmental problems. The MEC characterization and remediation activities using currently available technologies often yield unsatisfactory results, and are extremely expensive, due mainly to the inability of current technology to detect all MEC present at a site, and the inability to discriminate between MEC and non-hazardous items due mainly to insufficient accuracy of georeferencing of the geophysical images. As a result, most of the costs (90%) of MEC site remediation are currently spent on excavating targets that pose no threat. Thus, the goal of the research presented here, supported by a DoDpsilas strategic environmental research and development program (SERDP) grant, is to design and demonstrate a high-accuracy hybrid navigation and georeferencing device based on multi-sensor integration, which can meet the stringent requirements of a man-portable geophysical mapping system in open and impeded environments, and hence to lower the cost of remediation by improving the geolocation accuracy of MEC discrimination. This paper describes a hybrid system based on quadruple integration of GPS, inertial technology (IMU), pseudolites (PL) and terrestrial laser scanning (TLS) technology to improve the current geolocation capabilities at MEC sites. The concept design of the system, the algorithmic approach to sensor integration, with a special emphasis on TLS integration with GSP/IMU/PL, and the preliminary performance assessment based on simulations are presented.
用于未爆弹药探测与识别的地球物理传感器新定位技术
可靠和精确的导航技术对于在广泛的野外条件下对未爆弹药(UXO)进行强大的探测和识别至关重要。在靶场、弹药燃烧区和露天爆震区以及埋藏坑中检测和修复弹药和爆炸物是美国国防部(DoD)最紧迫的环境问题之一。使用现有技术的MEC表征和补救活动通常产生不满意的结果,并且非常昂贵,主要是因为当前技术无法检测到现场存在的所有MEC,并且无法区分MEC和非危险物品,主要是由于地球物理图像的地理参考精度不足。因此,目前MEC场地修复的大部分成本(90%)都花在了挖掘不构成威胁的目标上。因此,在美国国防部战略环境研究与发展计划(SERDP)资助下,本文提出的研究目标是设计并演示一种基于多传感器集成的高精度混合导航和地理参考设备,该设备可以满足开放和阻碍环境中便携式地球物理测绘系统的严格要求,从而通过提高MEC识别的地理定位精度来降低修复成本。本文介绍了一种基于GPS、惯性技术(IMU)、伪卫星(PL)和地面激光扫描(TLS)技术四重集成的混合系统,以提高当前MEC站点的地理定位能力。介绍了系统的概念设计、传感器集成的算法方法,重点介绍了TLS与GSP/IMU/PL的集成,以及基于仿真的初步性能评估。
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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