Production of trans-Neptunian binaries through chaos-assisted capture

被引:37
作者
Lee, Ernestine A.
Astakhov, Sergey A.
Farrelly, David
机构
[1] FivePrime Therapeut, San Francisco, CA 94158 USA
[2] Utah State Univ, Dept Chem & Biochem, Logan, UT 84322 USA
[3] UniqueICs, Saratov 410044, Russia
关键词
methods : N-body simulations; celestial mechanics; Kuiper Belt; minor planets; asteroids; binaries : general; SINGLE-STAR SCATTERING; KUIPER-BELT BINARIES; DISK EVOLUTION DRIVEN; SIZE DISTRIBUTION; ANALYTIC APPROXIMATIONS; NUMERICAL-SIMULATION; DYNAMICAL EVOLUTION; PLANETARY EMBRYOS; ACCRETION RATES; CROSS-SECTIONS;
D O I
10.1111/j.1365-2966.2007.11930.x
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The recent discovery of binary objects in the Kuiper Belt opens an invaluable window into past and present conditions in the trans-Neptunian part of the Solar System. For example, knowledge of how these objects formed can be used to impose constraints on planetary formation theories. We have recently proposed a binary object formation model based on the notion of chaos-assisted capture (CAC). In this model two potential binary partners may become trapped for long times inside chaotic layers within their mutual Hill sphere. The binary may then be captured permanently through gravitational scattering with a third 'intruder' body. The creation of binaries having similarly sized partners is an ab initio prediction of the model which also predicts large binary semimajor axes and moderately eccentric mutual orbits similar to those observed. Here we present a more detailed analysis with calculations performed in the spatial (three-dimensional) three- and four-body Hill approximations. It is assumed that the potential binary partners are initially following heliocentric Keplerian orbits and that their relative motion becomes perturbed as these objects undergo close encounters. First, the mass, velocity and orbital element distributions which favour binary formation are identified in the circular and elliptical Hill limits. We then consider intruder scattering to the circular Hill four-body problem and find that the CAC mechanism is consistent with observed, apparently randomly distributed, binary mutual orbit inclinations. It also predicts asymmetric distributions of retrograde versus prograde orbits. The time-delay induced by chaos on particle transport through the Hill sphere is analogous to the formation of a resonance in a chemical reaction. Implications for binary formation rates are considered and the 'fine-tuning' problem recently identified by Noll et al. is also addressed.
引用
收藏
页码:229 / 246
页数:18
相关论文
共 141 条
[71]   Kuiper belt objects: Relics from the accretion disk of the sun [J].
Luu, JX ;
Jewitt, DC .
ANNUAL REVIEW OF ASTRONOMY AND ASTROPHYSICS, 2002, 40 :63-101
[72]   Higher albedos and size distribution of large transneptunian objects [J].
Lykawka, PS ;
Mukai, T .
PLANETARY AND SPACE SCIENCE, 2005, 53 (13) :1319-1330
[73]  
Malhotra R., 2000, Protostars and planets 4, P1231
[74]   Astronomy - Worlds of mutual motion [J].
Margot, JL .
NATURE, 2002, 416 (6882) :694-695
[75]  
Merline W. J., 2002, Asteroids III, P289
[76]  
MOONS M, 1988, CELESTIAL MECH, V43, P349
[77]  
MORBIDELLI A, 2006, ASTROPH0512256
[78]   Solar system - Portrait of a suburban family [J].
Morbidelli, Alessandro .
NATURE, 2007, 446 (7133) :273-274
[79]  
MORISON MA, 1988, THESIS U WISCONSIN
[80]  
Murray C.D., 1999, Solar System Dynamics