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Effects of diffraction by ionospheric electron density irregularities on the range error in GNSS dual-frequency positioning and phase decorrelation

机译:电离层电子密度不规则性衍射对GNSS双频定位和相位解相关中距离误差的影响

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摘要

It can be important to determine the correlation of different frequency signals in L band that have followed transionospheric paths. In the future, both GPS and the new Galileo satellite system will broadcast three frequencies enabling more advanced three frequency correction schemes so that knowledge of correlations of different frequency pairs for scintillation conditions is desirable. Even at present, it would be helpful to know how dual-frequency Global Navigation Satellite Systems positioning can be affected by lack of correlation between the L1 and L2 signals. To treat this problem of signal correlation for the case of strong scintillation, a previously constructed simulator program, based on the hybrid method, has been further modified to simulate the fields for both frequencies on the ground, taking account of their cross correlation. Then, the errors in the two-frequency range finding method caused by scintillation have been estimated for particular ionospheric conditions and for a realistic fully three-dimensional model of the ionospheric turbulence. The results which are presented for five different frequency pairs (L1/L2, L1/L3, L1/L5, L2/L3, and L2/L5) show the dependence of diffractional errors on the scintillation index S4 and that the errors diverge from a linear relationship, the stronger are scintillation effects, and may reach up to ten centimeters, or more. The correlation of the phases at spaced frequencies has also been studied and found that the correlation coefficients for different pairs of frequencies depend on the procedure of phase retrieval, and reduce slowly as both the variance of the electron density fluctuations and cycle slips increase.
机译:确定跟随电离层路径的L波段中不同频率信号的相关性可能很重要。将来,GPS和新的伽利略卫星系统都将广播三个频率,从而实现更先进的三个频率校正方案,因此需要了解闪烁条件下不同频率对的相关性。即使在目前,了解L1和L2信号之间缺乏相关性如何影响双频全球导航卫星系统的定位也会很有帮助。为了在强烈闪烁的情况下解决信号相关性的问题,基于混合方法的先前构造的仿真器程序已被进一步修改,以考虑地面上两个频率的场,并考虑它们的互相关性。然后,针对特定的电离层条件和电离层湍流的实际全三维模型,估计了由闪烁引起的两频范围发现方法中的误差。针对五个不同频率对(L1 / L2,L1 / L3,L1 / L5,L2 / L3和L2 / L5)给出的结果表明,衍射误差与闪烁指数S4有关,并且误差与a线性关系越强,闪烁效应越强,并且可能达到十厘米或更长。还研究了间隔频率下的相位相关性,发现不同频率对的相关系数取决于相位恢复的过程,并且随着电子密度波动和周跳的方差增加而缓慢降低。

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  • 来源
    《Radio Science》 |2011年第3期|p.12-21|共10页
  • 作者单位

    Department of Radio Physics, University of St Petersburg, St. Petersburg,Russia;

    Department of Radio Physics, University of St Petersburg, St. Petersburg,Russia;

    School of Electrical, Electronic, and Computer Engineering, Newcastle University, Newcastle, UK;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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