کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
5486463 | 1399463 | 2017 | 23 صفحه PDF | دانلود رایگان |
عنوان انگلیسی مقاله ISI
Orbit determination using real tracking data from FY3C-GNOS
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کلمات کلیدی
PODEGM2008LEOMeOPCOBDSESASPPRMSSSTGEOPPPACSDMCGNSSMPcsEKFBeiDou - بیدوPrecise orbit determination - تعیین دقیق مدارOrbit determination - تعیین مدارSatellite-to-satellite tracking - ردیابی ماهواره به ماهوارهGPS - سامانه موقعیتیاب جهانیGlobal Navigation Satellite System - سیستم ماهواره ای ناوبری جهانیGlobal Positioning System - سیستم موقعیت یاب جهانیExtended Kalman filtering - فیلتر Kalman را تمدید کردRadio occultation - مخفی کردن رادیوLow earth orbit - مدار زمین کمgeostationary orbit - مدار ژئواستاتیکPrecise point positioning - موقعیت دقیق نقطهroot mean square - میانگین مربع ریشهPCV یا Pneumococcal conjugate vaccine - واکسن کونژوگه پنوموکوکcode - کد
موضوعات مرتبط
مهندسی و علوم پایه
علوم زمین و سیارات
علوم فضا و نجوم
پیش نمایش صفحه اول مقاله
چکیده انگلیسی
China is currently developing the BeiDou Navigation Satellite System, also known as BDS. The nominal constellation of BDS (regional), which had been able to provide preliminary regional positioning and navigation functions, was composed of fourteen satellites, including 5 GEO, 5 IGSO and 4 MEO satellites, and was realized by the end of 2013. Global navigation satellite system occultation sounder (GNOS) on board the Fengyun3C (FY3C) satellite, which is the first BDS/GPS compatible radio occultation (RO) sounder in the world, was launched on 23 September 2013. The GNOS instrument is capable of tracking up to 6 BeiDou satellites and more than 8Â GPS satellites. We first present a quality analysis using 1-week onboard BDS/GPS measurements collected by GNOS. Satellite visibility, multipath combination and the ratio of cycle slips are analyzed. The analysis of satellite visibility shows that for one week the BDS receiver can track up to 6 healthy satellites. The analysis of multipath combinations (MPC) suggests more multipath present for BDS than GPS for the CA code (B1 MPC is 0.597Â m, L1 MPC is 0.326Â m), but less multipath for the P code (B2 MPC is 0.421Â m, L2 MPC is 0.673Â m). More cycle slips occur for the BDS than for the GPS receiver as shown by the ratio of total satellites/cycle slips observed over a 24Â h period. Both the maximum value and average of the ratio of cycle slips based on BDS measurements is 72/50.29, which is smaller than 368/278.71 based on GPS measurements. Second, the results of reduced dynamic orbit determination using BDS/GPS code and phase measurements, standalone BDS SPP (Single Point Positioning) kinematic solution and real-time orbit determination using BDS/GPS code measurements are presented and analyzed. Using an overlap analysis, the orbit consistency of FY3C-GNOS is about 3.80Â cm. The precision of BDS only solutions is about 22Â cm. The precision of FY3C-GNOS orbit with the Helmert variance component estimation are improved slightly after the BDS observations are added for one week (October 10-16, 2013). In the three-dimensional direction, the orbit precision is respectively improved by 0.31Â cm. BDS code observations already allow a standalone positioning with RMS accuracy of at least 22Â m using BDS broadcast ephemeris, while the accuracy is at least 5Â m using BDS precise ephemeris. The standard deviations of differences of real-time orbit determination with the Dynamic Model Compensation using BDS/GPS, GPS, and BDS code measurements are 1.24Â m, 1.27Â m and 6.67Â m in three-dimensional direction, respectively. It can slightly improve convergence time for real-time orbit determination by 17Â s after the BDS observations are added. And it can also slightly improve the accuracy of real-time orbit determination by 0.03Â m. The results obtained in this paper are already rather promising.
ناشر
Database: Elsevier - ScienceDirect (ساینس دایرکت)
Journal: Advances in Space Research - Volume 60, Issue 3, 1 August 2017, Pages 543-556
Journal: Advances in Space Research - Volume 60, Issue 3, 1 August 2017, Pages 543-556
نویسندگان
Chao Xiong, Chuanfang Lu, Jun Zhu, Huoping Ding,