Development of a dual-frequency GPS/GLONASS receiver for space application

M. Ripley, J. Cooper, P. Silvestrin, P. Daly
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引用次数: 1

Abstract

Laboratory breadboards of a high precision dual-frequency Global Navigation Satellite System (GNSS) receiver have been developed at the Institute of Satellite Navigation at the University of Leeds (ISN) under a European Space Agency (ESA) programme. The main objective of these breadboards is to serve as development tools for receiver signal processing research in view of the scientific applications of GNSS. Some of these applications will be realised by means of receivers embarked on satellites in low Earth orbit (LEO) as part of on-going and future ESA programmes and will include precise orbit determination, radio occultation measurements and measurements of the parameters characterising GNSS signals reflected at the sea surface. During an occultation measurement the GNSS signal propagation encounters a challenging environment. Not only substantial Doppler dynamics occur during a measurement due to the effect of gradients of the refraction index, but also attenuation and deep fading caused by multipath propagation. The signal tracking requirements for space applications are analysed and applied to the hardware and software tasks. Resultant enhancements to the receiver digital processing are presented along with their impact on the intended application. The areas of concern are the acquisition and tracking of signals in high dynamics and at low carrier-to-noise ratios (CNR), and on improving the performance of tracking the GPS P code without full knowledge of the spreading code.
研制用于空间的双频GPS/GLONASS接收机
在欧洲航天局(ESA)的一个项目下,利兹大学(ISN)卫星导航研究所已经开发出高精度双频全球导航卫星系统(GNSS)接收器的实验室面包板。考虑到GNSS的科学应用,这些面包板的主要目的是作为接收机信号处理研究的开发工具。其中一些应用将通过搭载在低地球轨道卫星上的接收器来实现,这是欧空局正在进行和今后的方案的一部分,其中将包括精确确定轨道、无线电掩星测量和测量海洋表面反射的全球导航卫星系统信号的特征参数。在掩星测量期间,GNSS信号的传播遇到了一个具有挑战性的环境。在测量过程中,由于折射率梯度的影响,不仅会产生大量的多普勒动力学,而且还会产生多径传播引起的衰减和深衰落。分析了空间应用的信号跟踪要求,并将其应用于硬件和软件任务。由此产生的接收机数字处理增强,以及它们对预期应用的影响。关注的领域是在高动态和低载波噪声比(CNR)下采集和跟踪信号,以及在不完全了解传播码的情况下提高跟踪GPS P码的性能。
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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