The deep-space multi-object orbit determination system and its application to Hayabusa2's asteroid proximity operations

被引:15
作者
Takeuchi, Hiroshi [1 ,2 ]
Yoshikawa, Kent [3 ]
Takei, Yuto [3 ]
Oki, Yusuke [3 ]
Kikuchi, Shota [1 ]
Ikeda, Hitoshi [3 ]
Soldini, Stefania [1 ,4 ]
Ogawa, Naoko [1 ]
Mimasu, Yuya [1 ]
Ono, Go [3 ]
Terui, Fuyuto [1 ]
Sakatani, Naoya [7 ]
Yamada, Manabu [5 ]
Kouyama, Toru [6 ]
Kameda, Shingo [7 ]
Saiki, Takanao [1 ]
Tsuda, Yuichi [1 ,2 ]
机构
[1] Japan Aerosp Explorat Agcy, Inst Space & Astronaut Sci, Sagamihara 2525210, Japan
[2] Grad Univ Adv Studies, Hayama 2400193, Japan
[3] Japan Aerosp Explorat Agcy, Res & Dev Directorate, Sagamihara 2525210, Japan
[4] Univ Liverpool, Liverpool L69 3BX, England
[5] Chiba Inst Technol, Narashino 2750016, Japan
[6] Natl Inst Adv Ind Sci & Technol, Koto Ku, Tokyo 1350064, Japan
[7] Rikkyo Univ, Toshima Ku, Tokyo 1718501, Japan
关键词
orbit determination; optical navigation; gravity measurements; superior solar conjunction; delta differential one-way ranging (delta-DOR); REFINED DISCRETE;
D O I
10.1007/s42064-020-0084-7
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The deep-space multi-object orbit determination system (DMOODS) and its application in the asteroid proximity operation of the Hayabusa2 mission are described. DMOODS was developed by the Japan Aerospace Exploration Agency (JAXA) for the primary purpose of determining the trajectory of deep-space spacecraft for JAXA's planetary missions. The weighted least-squares batch filter is used for the orbit estimator of DMOODS. The orbit estimator supports more than 10 data types, some of which are used for relative trajectory measurements between multiple space objects including natural satellites and small bodies. This system consists of a set of computer programs running on Linux-based consumer PCs on the ground, which are used for orbit determination and the generation of radiometric tracking data, such as delta differential one-way ranging and doppler tracking data. During the asteroid proximity phase of Hayabusa2, this system played an essential role in operations that had very strict navigation requirements or operations in which few optical data were obtained owing to special constraints on the spacecraft attitude or distance from the asteroid. One example is orbit determination during the solar conjunction phase, in which the navigation accuracy is degraded by the effect of the solar corona. The large range bias caused by the solar corona was accurately estimated with DMOODS by combining light detection and ranging (LIDAR) and ranging measurements in the superior solar conjunction phase of Hayabusa2. For the orbiting operations of target markers and the MINERVA-II2 rover, the simultaneous estimation of six trajectories of four artificial objects and a natural object was made by DMOODS. This type of simultaneous orbit determination of multi-artificial objects in deep-space has never been accomplished before.
引用
收藏
页码:377 / 392
页数:16
相关论文
共 23 条
[1]  
[Anonymous], 2020, INFORMATION
[2]  
Consultative Committee for Space Data Systems, 2016, GREEN BOOK, V3
[3]   Precise and Fast Computation of the Gravitational Field of a General Finite Body and Its Application to the Gravitational Study of Asteroid Eros [J].
Fukushima, Toshio .
ASTRONOMICAL JOURNAL, 2017, 154 (04)
[4]  
Jet Propulsion Laboratory, 2018, 810007 DSN JET PROP, P104
[5]  
Kaula WM., 1966, THEORY SATELLITE GEO
[6]   A new, lower value of total solar irradiance: Evidence and climate significance [J].
Kopp, Greg ;
Lean, Judith L. .
GEOPHYSICAL RESEARCH LETTERS, 2011, 38
[7]   Refined discrete and empirical horizontal gradients in VLBI analysis [J].
Landskron, Daniel ;
Boehm, Johannes .
JOURNAL OF GEODESY, 2018, 92 (12) :1387-1399
[8]   VMF3/GPT3: refined discrete and empirical troposphere mapping functions [J].
Landskron, Daniel ;
Boehm, Johannes .
JOURNAL OF GEODESY, 2018, 92 (04) :349-360
[9]  
McMahon J., 2015, P AM GEOPH UN FALL M
[10]  
Montenbruck O., 2000, Satellite orbits-models, methods and applications