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Low Earth orbit satellite navigation errors and vertical total electron content in single-frequency GPS tracking

机译:单频GPS跟踪中的低地球轨道卫星导航误差和垂直总电子含量

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摘要

In the context of space applications, the GPS system is presently a well-established and accepted tracking system. To meet the basic navigation requirements, most satellites in a low Earth orbit are equipped with single-frequency GPS receivers that measure the coarse acquisition code as well as the L1 phase. However, the resulting kinematic navigation solutions exhibit systematic position errors caused by elevation-dependent ionospheric path delays. In this study a simple analytical model is established, which quantitatively relates the position error to the vertical electron content and the mapping function. This model substantiates the empirical evidence of a mean radial offset that increases in proportion to the total electron content above the satellite. It is furthermore shown that the ratio between this offset and the vertical ionospheric path delay depends on the applied elevation mask angle. Representative ratios of 3–5 are obtained for the mapping function of the Lear ionosphere model and elevation cutoff angles of 10°, 5°, and 0°. This analytical result has further been confirmed by signal simulator tests as well as flight data of the CHAMP satellite.
机译:在空间应用的情况下,GPS系统是目前公认的公认的跟踪系统。为了满足基本导航要求,低地球轨道上的大多数卫星都配备了单频GPS接收机,该接收机可以测量粗略的捕获码以及L1相位。但是,所得的运动学导航解决方案显示出由仰角相关的电离层路径延迟引起的系统位置误差。在这项研究中,建立了一个简单的分析模型,该模型将位置误差与垂直电子含量和映射函数定量相关。该模型证实了平均径向偏移的经验证据,该平均径向偏移与卫星上方的总电子含量成正比。此外还表明,该偏移量与垂直电离层路径延迟之间的比率取决于所施加的仰角掩模角。对于李尔电离层模型的映射函数以及10°,5°和0°的仰角截止角,获得的代表比率为3-5。信号模拟器测试以及CHAMP卫星的飞行数据进一步证实了这一分析结果。

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