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The Next-Generation Multimission U.S. Surveillance Radar Network

机译:下一代多用途美国监视雷达网络

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摘要

The U.S. Government operates seven distinct radar networks, providing weather and aircraft surveillance for public weather services, air traffic control, and homeland defense. In this paper, we describe a next-generation multimission phased-array radar (MPAR) concept that could provide enhanced weather and aircraft surveillance services with potentially lower life cycle costs than multiple single-function radar networks. We describe current U.S. national weather and aircraft surveillance radar networks and show that by reducing overlapping airspace coverage, MPAR could reduce the total number of radars required by approximately one-third. A key finding is that weather surveillance requirements dictate the core parameters of a multimission radar—airspace coverage, aperture size, radiated power, and angular resolution. Aircraft surveillance capability can be added to a phased array weather radar at low incremental cost because the agile, electronically steered beam would allow the radar to achieve the much more rapid scan update rates needed for aircraft volume search missions, and additionally to support track modes for individual aircraft targets. We describe an MPAR system design that includes multiple transmit–receive channels and a highly digitized active phased array to generate independently steered beam clusters for weather, aircraft volume search, and aircraft track modes. For each of these modes, we discuss surveillance capability improvements that would be realized relative to today's radars. The Federal Aviation Administration (FAA) has initiated the development of an MPAR “preprototype” that will demonstrate critical subsystem technologies and multimission operational capabilities. Initial subsystem designs have provided a solid basis for estimating MPAR costs for comparison with existing, mechanically scanned operational surveillance radars.
机译:美国政府运营着七个不同的雷达网络,为公共天气服务,空中交通管制和国土防御提供天气和飞机监视。在本文中,我们描述了下一代多任务相控阵雷达(MPAR)概念,该概念可以提供增强的天气和飞机监视服务,并且其生命周期成本可能比多个单功能雷达网络更低。我们描述了当前的美国国家天气和飞机监视雷达网络,并表明通过减少重叠的空域覆盖范围,MPAR可以将所需的雷达总数减少大约三分之一。一个关键发现是,气象监视要求决定了多任务雷达的核心参数-空域覆盖范围,孔径大小,辐射功率和角分辨率。可以以较低的增量成本将飞机监视功能添加到相控阵天气雷达中,因为敏捷的电子控制波束将使雷达能够实现飞机体积搜索任务所需的更快的扫描更新率,并支持航迹模式。单个飞机目标。我们描述了一个MPAR系统设计,该系统包括多个发射-接收通道和一个高度数字化的有源相控阵,以生成独立的转向波束簇,用于天气,飞机体积搜索和飞机航迹模式。对于每种模式,我们讨论相对于当今雷达将实现的监视能力改进。联邦航空管理局(FAA)已开始开发MPAR“原型”,该原型将展示关键的子系统技术和多任务运行能力。初步的子系统设计为估算MPAR成本提供了坚实的基础,以便与现有的机械扫描操作监视雷达进行比较。

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