期刊文献+

基于PPP的对流层延迟估计方法及其影响因素分析 被引量:4

ESTIMATION OF ZENITH PATH DELAY BASED ON PPP AND ANALYSIS OF ITS INFLUENCE FACTOR
下载PDF
导出
摘要 介绍利用精密单点定位(PPP)技术进行天顶对流层延迟(ZPD)估计的方法,从投影函数模型选取、卫星截止高度角设置、精密星历与精密钟差的使用3方面分析了各种因素对天顶对流层延迟估计精度的影响,确定了相对较优的模型和数据处理策略。大量的算例和分析表明:采用NMF与GMF均可获得较高精度的ZPD,二者差异甚小;采用5°10°的截止高度角更利于得到较好的ZPD结果;采用快速精密星历和钟差、实时观测精密星历和快速精密钟差解算的ZPD结果与采用事后精密星历和钟差的精度是相当的,而采用外推超快精密星历和快速精密钟差解算测站ZPD值的结果精度稍有下降,但仍具较高的精度。 The method of zenith path delay(ZPD) estimation based on precise point positioning(PPP) is introduced.Besides,the effect of various factors on ZPD estimation’s accuracy is analyzed from the view of mapping function selection,satellite cut-off elevation angle setting,the use of precise ephemeris and clock errors.Accordingly,relatively better mode and data processing strategy are determined.Large amount of experiments and analysis show that ZPD with relatively high accuracy can be obtained by use of both NMF and GMF,and the difference between them is little.Moreover,5°-10° in the cut-off elevation angle is more favorable to ZPD estimation.In addition,the ZPD calculated with rapid precise ephemeris and clock errors or with predicted precise ephemeris and rapid precise clock errors are of the similar accuracy as that derived from post precise ephemeris and clock errors.However,accuracy of ZPD obtained by adopting extrapolated ultra-rapid precise ephemeris and rapid clock errors slightly decreases but is still relatively high.
出处 《大地测量与地球动力学》 CSCD 北大核心 2011年第2期107-110,116,共5页 Journal of Geodesy and Geodynamics
基金 国家自然科学基金(40874017)
关键词 GPS精密单点定位 天顶对流层延迟 大气可降水量 钟差 星历 GPS precise point positioning zenith path delay atmospheric precipitable water clock error ephemeris
  • 相关文献

参考文献21

  • 1Davis J, et al. Geodesy by radio interferometry : Effects of atmospheric modeling errors on estimates of baseline length [J]. Radio Sci, 1985, 20(6) : 1 593 - 1 607.
  • 2Askne J and Nordius R. Estimation of tropospheric delay for microwaves from surface weather data [ J ]. Radio Science, 1987, 99(1): 979-986.
  • 3Bevis M, et al. GPS meteorology: Remote sensing of atmospheric water vapor using the global positioning system [ J ]. Journal of Geophysical Research, 1992, 97 (D14) : 15 787 - 15 801.
  • 4Rocken C, et al. Sensing atmospheric water vapor with the global positioning system [ J ]. Geophysical Research Letter, 1993, 20:2 631 -2 364.
  • 5Rocken C, et al. GPS/STORM-GPS sensing of atmospheric water vapor for meteorology [ J ]. J Atmos and Ocean Tech, 1995, 12 : 468 - 478.
  • 6Duan J, et al. GPS meteorology : Direct estimation of the absolute value of precipitable water[ J ]. J Appl Meteorol, 1995, 35 : 830 - 838.
  • 7Rocken C, Van Hove T and Ware R H. Near real-time GPS sensing of atmospheric water vapor[ J ]. Geophysical Research Letter, 1997, 24:3 221 -3 224.
  • 8Niell,et al. Comparison of measurements of atmospheric wet delay by radiosonde,water vapor, radiometer, GPS and VL- BI[ J]. Journal of Atmospheric and Technology, 2000, 8: 830 - 850.
  • 9Flores A, Ruffini G and Rius A. 4D tropospheric tomography using GPS slant wet delays [ J ]. Annales Geophyssicae, 2000, 18 : 223 - 234.
  • 10Pany T, Pesec P and Stangl G. Atmospheric GPS slant path delays and ray tracing through numerical weather models, a comparison[ J ]. Physics and Chemistry of the Earth, Part A : Solid Earth and Geodesy,2001,26 (3) : 183 - 188.

二级参考文献27

共引文献103

同被引文献64

引证文献4

二级引证文献66

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部