Precise absolute and relative orbit determination for distributed InSAR satellite system
Precise orbit and baseline determination of formation-flying low Earth orbiters are prerequisites for the success of distributed InSAR satellite system mission. GNSS-based reduced-dynamic absolute and relative orbit determination method is the main method to obtain high-precision orbit and baseline...
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Surveying and Mapping Press
2021-05-01
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doaj-c8fd2cfd4fe2414999812f3bd33fd1b32021-08-18T02:33:01ZzhoSurveying and Mapping PressActa Geodaetica et Cartographica Sinica1001-15951001-15952021-05-0150558058810.11947/j.AGCS.2021.2020041520210502Precise absolute and relative orbit determination for distributed InSAR satellite systemSHAO Kai0ZHANG Houzhe1QIN Xianping2HUANG Zhiyong3YI Bin4GU Defeng5College of Liberal Arts and Sciences, National University of Defense Technology, Changsha 410073, ChinaCollege of Liberal Arts and Sciences, National University of Defense Technology, Changsha 410073, ChinaXi'an Research Institute of Surveying and Mapping, Xi'an 710054, ChinaInformation Engineering University, Zhengzhou 450001, ChinaCollege of Liberal Arts and Sciences, National University of Defense Technology, Changsha 410073, ChinaTianQin Research Center for Gravitational Physics and School of Physics and Astronomy, Sun Yat-sen University (Zhuhai Campus), Zhuhai 519082, ChinaPrecise orbit and baseline determination of formation-flying low Earth orbiters are prerequisites for the success of distributed InSAR satellite system mission. GNSS-based reduced-dynamic absolute and relative orbit determination method is the main method to obtain high-precision orbit and baseline products. The absolute and relative orbit determination for TH-2 satellite system is researched using the space-borne GPS data. The results show that the signal tracking abilities and data qualities of the receivers equipped on satellite A and satellite B are almost the same. By modeling orbital maneuvers with constant empirical accelerations, the influences of orbital maneuvers on absolute and relative orbit determination for TH-2 satellite formation can be effectively eliminated. For single-satellite absolute orbit determination, the three-dimensional (3D) RMS of 6 h overlapping orbit differences is less than 1.2 cm. The RMS values of satellite laser ranging data validation residuals for satellite A and satellite B are 2.76 cm and 2.33 cm, respectively. For dual-satellite relative orbit determination, the 3D RMS of 6 h overlapping baseline differences is about 0.66 mm. Baseline comparison RMS with the products of Xi'an Research Institute of Surveying and Mapping are 0.73 mm, 1.11 mm, 0.51 mm and 1.43 mm in radial, tangential, normal and 3D direction, respectively.http://xb.sinomaps.com/article/2020/1001-1595/2021-5-580.htmdistributed insarth-2absolute orbit determinationrelative orbit determinationdata quality assessmentgnss |
collection |
DOAJ |
language |
zho |
format |
Article |
sources |
DOAJ |
author |
SHAO Kai ZHANG Houzhe QIN Xianping HUANG Zhiyong YI Bin GU Defeng |
spellingShingle |
SHAO Kai ZHANG Houzhe QIN Xianping HUANG Zhiyong YI Bin GU Defeng Precise absolute and relative orbit determination for distributed InSAR satellite system Acta Geodaetica et Cartographica Sinica distributed insar th-2 absolute orbit determination relative orbit determination data quality assessment gnss |
author_facet |
SHAO Kai ZHANG Houzhe QIN Xianping HUANG Zhiyong YI Bin GU Defeng |
author_sort |
SHAO Kai |
title |
Precise absolute and relative orbit determination for distributed InSAR satellite system |
title_short |
Precise absolute and relative orbit determination for distributed InSAR satellite system |
title_full |
Precise absolute and relative orbit determination for distributed InSAR satellite system |
title_fullStr |
Precise absolute and relative orbit determination for distributed InSAR satellite system |
title_full_unstemmed |
Precise absolute and relative orbit determination for distributed InSAR satellite system |
title_sort |
precise absolute and relative orbit determination for distributed insar satellite system |
publisher |
Surveying and Mapping Press |
series |
Acta Geodaetica et Cartographica Sinica |
issn |
1001-1595 1001-1595 |
publishDate |
2021-05-01 |
description |
Precise orbit and baseline determination of formation-flying low Earth orbiters are prerequisites for the success of distributed InSAR satellite system mission. GNSS-based reduced-dynamic absolute and relative orbit determination method is the main method to obtain high-precision orbit and baseline products. The absolute and relative orbit determination for TH-2 satellite system is researched using the space-borne GPS data. The results show that the signal tracking abilities and data qualities of the receivers equipped on satellite A and satellite B are almost the same. By modeling orbital maneuvers with constant empirical accelerations, the influences of orbital maneuvers on absolute and relative orbit determination for TH-2 satellite formation can be effectively eliminated. For single-satellite absolute orbit determination, the three-dimensional (3D) RMS of 6 h overlapping orbit differences is less than 1.2 cm. The RMS values of satellite laser ranging data validation residuals for satellite A and satellite B are 2.76 cm and 2.33 cm, respectively. For dual-satellite relative orbit determination, the 3D RMS of 6 h overlapping baseline differences is about 0.66 mm. Baseline comparison RMS with the products of Xi'an Research Institute of Surveying and Mapping are 0.73 mm, 1.11 mm, 0.51 mm and 1.43 mm in radial, tangential, normal and 3D direction, respectively. |
topic |
distributed insar th-2 absolute orbit determination relative orbit determination data quality assessment gnss |
url |
http://xb.sinomaps.com/article/2020/1001-1595/2021-5-580.htm |
work_keys_str_mv |
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