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Study of a constellation of bistatic radar altimeters for mesoscale ocean applications

机译:用于中尺度海洋应用的双基地雷达高度计星座的研究

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A constellation of satellite radar altimeters for mesoscale ocean applications has been recommended since the beginning of this decade. Studies show that eight monostatic satellites are needed to achieve an ideal sample spacing of seven days revisit time and 50-km spatial sampling. However, for this number of satellites the required cost of such a constellation is very high. With the appearance of Global Navigation Satellite Systems (GNSS), such as GPS and GLONASS, there is a great opportunity for constellations of small satellites to operate in a cooperative bistatic way, i.e., with their sensors synchronized both in time and space. The benefits of this concept are the subject of this paper. In this article, the authors study a constellation of bistatic altimeters with fewer satellites than the monostatic constellation but with the same sampling performance. This paper first introduces the mesoscale ocean requirements. The configuration of the bistatic constellation follows together with an analysis of its coverage and required pulse-limited footprints. Suitable gate lengths, pulse repetition frequency, synchronization, pointing requirements, and link budget are discussed. The tracker and estimation process are also described as well as calibration issues. The goal of the whole design of the altimeter instrument itself has been to achieve simultaneous monostatic and bistatic operation with the simplest architecture.
机译:从本世纪初开始,就已经推荐了一个用于中尺度海洋应用的卫星雷达高度计星座。研究表明,要获得7天重访时间和50公里空间采样的理想采样间隔,需要八颗单基地卫星。但是,对于这样数量的卫星,这种星座的所需成本非常高。随着诸如GPS和GLONASS之类的全球导航卫星系统(GNSS)的出现,小型卫星星座有很大的机会以协作双基地的方式运行,即其传感器在时间和空间上都同步。此概念的好处是本文的主题。在本文中,作者研究了一个双基地测高仪星座,其卫星数量少于单基地星座,但采样性能相同。本文首先介绍了中尺度海洋需求。双基地构型的配置以及对它的覆盖范围和所需的脉冲限制的覆盖区的分析一起进行。讨论了合适的栅极长度,脉冲重复频率,同步,指向要求和链路预算。还描述了跟踪器和估计过程以及校准问题。高度计仪器本身的整体设计目标是以最简单的架构实现同时的单点和双点操作。

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