Title :
A Near-Real-Time Automatic Orbit Determination System for COSMIC and Its Follow-On Satellite Mission: Analysis of Orbit and Clock Errors on Radio Occultation
Author :
Yi-Shan Li ; Cheinway Hwang ; Tzu-Pang Tseng ; Cheng-Yung Huang ; Bock, H.
Author_Institution :
Dept. of Civil Eng., Nat. Chiao Tung Univ., Hsinchu, Taiwan
Abstract :
The COSMIC-2 mission is a follow-on mission of the Constellation Observing System for Meteorology, Ionosphere, and Climate (COSMIC) with an upgraded payload for improved radio occultation (RO) applications. The objective of this paper is to develop a near-real-time (NRT) orbit determination system, called NRT National Chiao Tung University (NCTU) system, to support COSMIC-2 in atmospheric applications and verify the orbit product of COSMIC. The system is capable of automatic determinations of the NRT GPS clocks and LEO orbit and clock. To assess the NRT (NCTU) system, we use eight days of COSMIC data (March 24-31, 2011), which contain a total of 331 GPS observation sessions and 12 393 RO observable files. The parallel scheduling for independent GPS and LEO estimations and automatic time matching improves the computational efficiency by 64% compared to the sequential scheduling. Orbit difference analyses suggest a 10-cm accuracy for the COSMIC orbits from the NRT (NCTU) system, and it is consistent as the NRT University Corporation for Atmospheric Research (URCA) system. The mean velocity accuracy from the NRT orbits of COSMIC is 0.168 mm/s, corresponding to an error of about 0.051 μrad in the bending angle. The rms differences in the NRT COSMIC clock and in GPS clocks between the NRT (NCTU) and the postprocessing products are 3.742 and 1.427 ns. The GPS clocks determined from a partial ground GPS network [from NRT (NCTU)] and a full one [from NRT (UCAR)] result in mean rms frequency stabilities of 6.1E-12 and 2.7E-12, respectively, corresponding to range fluctuations of 5.5 and 2.4 cm and bending angle errors of 3.75 and 1.66 μrad .
Keywords :
Global Positioning System; clocks; COSMIC data; COSMIC orbits; COSMIC-2 mission; GPS clocks; GPS estimations; GPS observation sessions; LEO estimations; LEO orbit; NRT COSMIC clock; NRT GPS clocks; NRT National Chiao Tung University system; NRT University Corporation for Atmospheric Research system; NRT orbits; NRT system; RO observable files; atmospheric applications; automatic determinations; automatic time matching; bending angle errors; clock errors; computational efficiency; improved radio occultation applications; mean rms frequency stabilities; mean velocity accuracy; near-real-time orbit determination system; orbit difference analyses; orbit product; parallel scheduling; partial ground GPS network; rms differences; satellite mission; sequential scheduling; Clocks; Global Positioning System; Low earth orbit satellites; Meteorology; Orbits; Real-time systems; COSMIC-2; Constellation Observing System for Meteorology, Ionosphere, and Climate (COSMIC); GPS; orbit determination (OD); radio occultation (RO);
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2013.2271547