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Grace-fo antenna phase center modeling and precise orbit determination with single receiver ambiguity resolution
Jin B(金彪)1,2,3; Li YQ(李语强)1; Jiang, Kecai4; Li ZL(李祝莲)1; Chen, Shanshan3
发表期刊Remote Sensing
2021-11-01
卷号13期号:21页码:19
DOI10.3390/rs13214204
产权排序第1完成单位
收录类别SCI ; EI
关键词single receiver ambiguity resolution phase center variation (PCV) calibration precise orbit determination GRACE FO satellites
摘要

Precise knowledge of the phase center location of the global navigation satellite system (GNSS) antenna is a prerequisite for precise orbit determination (POD) of the low Earth orbit (LEO) satellite. The phase center offset (PCO) and phase center variation (PCV) values for the LEO antenna obtained from ground calibration cannot reflect the error sources encountered in the actual spacecraft environment. PCV corrections are estimated by ionosphere free (IF) carrier phase post-fit residuals of reduced dynamic orbit determination. Ambiguity resolution (AR) plays a crucial role in achieving the best orbit accuracy. The single receiver AR concept is realized using wide-lane (WL) and narrow-lane (NL) bias products. Single difference (SD) observations between satellites are applied to remove the receiver dependent phase bias. SD AR and traditional double difference (DD) AR methods are applied to fix the ambiguities. The recovered SD and DD IF ambiguities are taken as pseudo-observations to constrain the undifferenced IF ambiguity parameters in the POD process. The LEO orbits based on float ambiguity (FA), SD, AR, and DD AR are investigated. One year’s data collected by the Gravity Recovery And Climate Experiment Follow-On (GRACE-FO) mission and GPS precise products provided by the Center for Orbit Determination in Europe (CODE) were analyzed. Precise orbit generated by the Jet Propulsion Laboratory (JPL), independent satellite laser ranging (SLR), and K-band ranging (KBR) measurements were utilized to assess the orbit accuracy. More than 98% of SD WL and 95% of SD NL ambiguities are fixed, which confirms the good quality of the bias products and correctness of the SD AR method. With PCV corrections, the average phase residuals of DD and SD AR solutions are 0.13 and 0.41 mm, which indicates improved consistency between applied models and observations. Compared with JPL’s orbit, the SD AR orbits achieve the accuracy of 6.0, 6.2, and 5.1 mm in along-track, cross-track, and radial directions. The SD AR solutions show an average improvement of 18.3% related to the FA orbits while 6.3% is gained by the DD AR approach. The root mean squares (RMSs) of SLR residuals for FA, DD AR, and SD AR solutions are 11.5, 10.2, and 9.6 mm, which validate the positive effect of AR on POD. Standard deviation (STD) of KBR residuals for SD AR orbits is 1.8 mm while 0.9 mm is achieved by the DD AR method. The explanation is that the phase bias products used for SD AR are not free of errors and the errors may degrade the KBR validation. In-flight PCV calibration and ambiguity resolution improve the LEO orbit accuracy effectively. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.

资助项目National Natural Science Foundation of China[1203300]
项目资助者National Natural Science Foundation of China[1203300]
语种英语
学科领域天文学 ; 天体测量学
文章类型Article
出版者MDPI
出版地ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
URL查看原文
WOS记录号WOS:000720012300001
WOS研究方向Environmental Sciences & Ecology ; Geology ; Remote Sensing ; Imaging Science & Photographic Technology
WOS类目Environmental Sciences ; Geosciences, Multidisciplinary ; Remote Sensing ; Imaging Science & Photographic Technology
关键词[WOS]BASE-LINE DETERMINATION ; GPS ; PPP ; JASON-1
EI入藏号20214411102649
EI主题词Orbits
EI分类号405.3 Surveying - 443.1 Atmospheric Properties - 655.2 Satellites - 716 Telecommunication ; Radar, Radio and Television
引用统计
被引频次:7[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
条目标识符http://ir.ynao.ac.cn/handle/114a53/24654
专题应用天文研究组
通讯作者Li YQ(李语强)
作者单位1.Yunnan Observatories, Chinese Academy of Sciences, Kunming 650216, China;
2.University of Chinese Academy of Sciences, Beijing 100049, China;
3.Space Star Technology Co., Ltd., Beijing 100194, China;
4.GNSS Research Center, Wuhan University, 129 Luoyu Road, Wuhan 430079, China
第一作者单位中国科学院云南天文台
通讯作者单位中国科学院云南天文台
推荐引用方式
GB/T 7714
Jin B,Li YQ,Jiang, Kecai,et al. Grace-fo antenna phase center modeling and precise orbit determination with single receiver ambiguity resolution[J]. Remote Sensing,2021,13(21):19.
APA Jin B,Li YQ,Jiang, Kecai,Li ZL,&Chen, Shanshan.(2021).Grace-fo antenna phase center modeling and precise orbit determination with single receiver ambiguity resolution.Remote Sensing,13(21),19.
MLA Jin B,et al."Grace-fo antenna phase center modeling and precise orbit determination with single receiver ambiguity resolution".Remote Sensing 13.21(2021):19.
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