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Asteroid Photometric Phase Functions From Bayesian Lightcurve Inversion
Muinonen, Karri1,2; Uvarova, Elizaveta1; Martikainen, Julia3; Penttilä, Antti1; Cellino, Alberto4; Wang XB(王晓彬)5,6
发表期刊FRONTIERS IN ASTRONOMY AND SPACE SCIENCES
2022-06-17
卷号9
DOI10.3389/fspas.2022.821125
产权排序第5完成单位
收录类别SCI
关键词asteroid lightcurve phase curve phase function absolute magnitude convex inversion asteroid taxonomy Gaia mission
摘要

Photometry is an important tool for characterizing the physical properties of asteroids. An asteroid's photometric lightcurve and phase curve refer to the variation of the asteroid's disk-integrated brightness in time and in phase angle (the Sun-asteroid-observer angle), respectively. They depend on the asteroid's shape, rotation, and surface scattering properties, and the geometry of illumination and observation. We present Bayesian lightcurve inversion methods for the retrieval of the asteroid's phase function, the unambiguous phase curve of a spherical object with surface scattering properties equal to those of the asteroid. A collection of such phase functions can give rise to a photometric taxonomy for asteroids. In the inverse problem, first, there are four classes of lightcurves that require individual error models. The photometric observations can be absolute or relative and they can have dense or sparse cadence in comparison to the rotation period of the asteroid. Second, the observations extend over varying phase angle ranges, requiring different phase function models. Asteroid photometry from the European Space Agency Gaia space mission extends, typically, over a range of phase angles, where the phase curve tends to be linear on the magnitude scale. Photometry from ground-based observing programs can reach small phase angles, where the asteroids show an opposition effect, a nonlinear increase of brightness on the magnitude scale towards zero phase angle. We provide error models for all four classes of lightcurves and make use of linear or linear-exponential phase functions for phase angles below 50 degrees. We apply the inverse methods to sparse absolute Gaia and dense relative ground-based lightcurves and obtain absolute magnitudes and phase functions, with uncertainties, for similar to 500 asteroids. Finally, we assess the lightcurve inversion problem for dense absolute photometry with the help of a numerical simulation for a Gaussian-random-sphere asteroid.

资助项目Academy of Finland[1325805] ; Academy of Finland[1336546] ; Academy of Finland[1345115] ; Chinese Academy of Sciences Presidents International Fellowship Initiative (PIFI)[2021VMA0017]
项目资助者Academy of Finland[1325805, 1336546, 1345115] ; Chinese Academy of Sciences Presidents International Fellowship Initiative (PIFI)[2021VMA0017]
语种英语
学科领域天文学 ; 太阳与太阳系
文章类型Article
出版者FRONTIERS MEDIA SA
出版地AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
ISSN2296-987X
URL查看原文
WOS记录号WOS:000820052000001
WOS研究方向Astronomy & Astrophysics
WOS类目Astronomy & Astrophysics
关键词[WOS]BODIES ; G(1)
引用统计
被引频次:9[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
版本出版稿
条目标识符http://ir.ynao.ac.cn/handle/114a53/25233
专题系外行星研究组
通讯作者Muinonen, Karri
作者单位1.Department of Physics, University of Helsinki, Helsinki, Finland;
2.Finnish Geospatial Research Institute FGI, Masala, Finland;
3.Instituto de Astrofísica de Andalucía, CSIC, Granada, Spain;
4.INAF, Osservatorio Astrofisico di Torino, Pino Torinese, Italy;
5.Yunnan Observatories, Chinese Academy of Sciences, Kunming, China;
6.School of Astronomy and Space Science, University of Chinese Academy of Sciences, Beijing, China
推荐引用方式
GB/T 7714
Muinonen, Karri,Uvarova, Elizaveta,Martikainen, Julia,et al. Asteroid Photometric Phase Functions From Bayesian Lightcurve Inversion[J]. FRONTIERS IN ASTRONOMY AND SPACE SCIENCES,2022,9.
APA Muinonen, Karri,Uvarova, Elizaveta,Martikainen, Julia,Penttilä, Antti,Cellino, Alberto,&Wang XB.(2022).Asteroid Photometric Phase Functions From Bayesian Lightcurve Inversion.FRONTIERS IN ASTRONOMY AND SPACE SCIENCES,9.
MLA Muinonen, Karri,et al."Asteroid Photometric Phase Functions From Bayesian Lightcurve Inversion".FRONTIERS IN ASTRONOMY AND SPACE SCIENCES 9(2022).
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