LARES-2 contribution to global geodetic parameters from the combined LAGEOS-LARES solutions

IF 3.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
K. Sośnica, F. Gałdyn, R. Zajdel, D. Strugarek, J. Najder, A. Nowak, M. Mikoś, T. Kur, J. Bosy, G. Bury
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Abstract

LARES-2 is a new geodetic satellite designed for high-accuracy satellite laser ranging. The orbit altitude of LARES-2 is similar to that of LAGEOS-1, whereas the inclination angle of 70° complements the LAGEOS-1 inclination of 110°; hence, both satellites form the butterfly configuration for the verification of the Lense–Thirring effect. Although the major objective of LARES-2 is testing general relativity, LARES-2 substantially contributes to geodesy in terms of the realization of terrestrial reference frames, recovery of the geocenter motion, pole coordinates, length-of-day, and low-degree gravity field coefficients. We analyze the first 1.5 years of LARES-2 data and test different empirical orbit models for LARES-2 with and without co-estimating low-degree gravity field coefficients to find the best combination strategy with LAGEOS satellites. We found that LARES-2 orbit determination is more accurate than that of LAGEOS-1/2 due to a different satellite construction consisting of a solid sphere with no inner structure. Neither the correction for D0 nor the empirical once-per-revolution along-track accelerations SC/SS have to be estimated for LARES-2 when co-estimating gravity field coefficients. The only empirical parameter needed for LARES-2 is the constant along-track acceleration S0 to compensate for the Yarkovsky–Schach effect. On the contrary, for LAGEOS-1/2, the non-gravitational perturbations affect C30 and Z geocenter estimates when once-per-revolution parameters are not estimated. LARES-2 does not face this issue. LARES-2 improves the formal errors of the Z geocenter component by up to 59% and C20 by up to 40% compared to the combined LAGEOS-1/2 solutions and provides C30 estimates unaffected by thermal orbit modeling issues.

LARES-2解决方案对全球大地测量参数的贡献
LARES-2是一种用于高精度卫星激光测距的新型大地测量卫星。LARES-2的轨道高度与LAGEOS-1相似,70°的轨道倾角弥补了LAGEOS-1 110°的轨道倾角;因此,两颗卫星形成蝴蝶构型,用于验证透镜-蒂林效应。尽管LARES-2的主要目标是检验广义相对论,但在实现地面参考系、恢复地心运动、极坐标、日长和低次重力场系数等方面,LARES-2对大地测量学做出了重大贡献。通过对LARES-2卫星前1.5年的数据进行分析,对LARES-2卫星在低重力场系数下和未在低重力场系数下的不同经验轨道模型进行测试,找出与LAGEOS卫星的最佳组合策略。我们发现LARES-2的轨道确定比LAGEOS-1/2的轨道确定更精确,因为它是由一个没有内部结构的实心球体组成的不同卫星结构。LARES-2在共估计重力场系数时,既不需要估计D0的修正,也不需要估计经验的每转一次沿轨道加速度SC/SS。LARES-2所需的唯一经验参数是补偿Yarkovsky-Schach效应的沿轨道恒定加速度S0。相反,对于LAGEOS-1/2,当不估计每转一次参数时,非引力扰动影响C30和Z地心估计。LARES-2没有这个问题。与LAGEOS-1/2组合解决方案相比,LARES-2将Z地心分量的形式误差提高了59%,C20提高了40%,并提供了不受热轨道建模问题影响的C30估计。
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来源期刊
Journal of Geodesy
Journal of Geodesy 地学-地球化学与地球物理
CiteScore
8.60
自引率
9.10%
发文量
85
审稿时长
9 months
期刊介绍: The Journal of Geodesy is an international journal concerned with the study of scientific problems of geodesy and related interdisciplinary sciences. Peer-reviewed papers are published on theoretical or modeling studies, and on results of experiments and interpretations. Besides original research papers, the journal includes commissioned review papers on topical subjects and special issues arising from chosen scientific symposia or workshops. The journal covers the whole range of geodetic science and reports on theoretical and applied studies in research areas such as: -Positioning -Reference frame -Geodetic networks -Modeling and quality control -Space geodesy -Remote sensing -Gravity fields -Geodynamics
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