Orbit determination of asteroid (469219) Kamo‘oalewa using a combination of historical and new observations

Author:

Huang Hao123ORCID,Liu Shanhong34,Ge Liang15,Cao Jianfeng34,Li Xie34,Gao Jian12

Affiliation:

1. Institute for Frontiers in Astronomy and Astrophysics, Beijing Normal University , Beijing 100875 , China

2. Department of Astronomy, Beijing Normal University , Beijing 100875 , China

3. National Key Laboratory of Science and Technology on Aerospace Flight Dynamics , Beijing 100094 , China

4. Beijing Aerospace Control Center , Beijing 100094 , China

5. Key Laboratory of Optical Astronomy, National Astronomical Observatories, Chinese Academy of Sciences , Beijing 100012 , China

Abstract

ABSTRACT The orbit solution of near-Earth asteroids heavily relies on ground-based optical observations. The orbit uncertainty is limited by the insufficient observation quantity and quality. The Chinese Tianwen-2 mission targets a near-Earth asteroid (469219) Kamo‘oalewa and a main-belt comet, 311P/PANSTARRS. To accurately determine the orbit of Kamo‘oalewa, more optical observations are needed. Autonomous observation experiments focusing on Kamo‘oalewa were carried out using the 2.16-m telescope at the Xinglong Observatory of the National Astronomical Observatory of China. We found that this telescope could observe near-Earth asteroids as faint as a magnitude of 22.8. Based on the stacking method and trailed star extraction algorithm, 14 optical observations were obtained from 2022 to 2024. The orbit for Kamo‘oalewa was determined by combining our observations with historical observations between 2004 and 2024. The inclusion of our observations results in improved orbital uncertainties of Kamo‘oalewa by 18.67, 7.93, and 11.12 km (1σ) in the X, Y, and Z directions, respectively. Furthermore, by combining all existing and simulated observations, the uncertainty of the orbital determination of Kamo‘oalewa was analysed. When using an additional 180 group observations from 3 Chinese observatories over 2 yr, the orbital uncertainties of Kamo‘oalewa in the 3 directions could be reduced to 30 km (1σ).

Funder

Chinese Academy of Sciences

Publisher

Oxford University Press (OUP)

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