Hostname: page-component-8448b6f56d-t5pn6 Total loading time: 0 Render date: 2024-04-23T14:30:51.169Z Has data issue: false hasContentIssue false

Planet formation around intermediate mass stars

Published online by Cambridge University Press:  01 October 2007

Katherine A. Kretke
Affiliation:
Department of Astronomy and Astrophysics, University of California, Santa Cruz, CA
D. N. C. Lin
Affiliation:
Department of Astronomy and Astrophysics, University of California, Santa Cruz, CA Kavli Institute of Astronomy and Astrophysics, Peking University, Beijing, China
Neal J. Turner
Affiliation:
Jet Propulsion Lab, Pasadena, CA
Rights & Permissions [Opens in a new window]

Abstract

Core share and HTML view are not available for this content. However, as you have access to this content, a full PDF is available via the ‘Save PDF’ action button.

We present a mechanism by which gas giants form efficiently around intermediate mass stars. MRI-driven turbulence effectively drives angular momentum transport in regions of the disk with sufficiently high ionization fraction. In the inner regions of the disk, where the midplane temperature is above ∼1000K, thermal ionization effectively couples the disk to the magnetic field, providing a relatively large viscosity. A pressure maximum will develop outside of this region as the gaseous disk approaches a steady-state surface density profile, trapping migrating solid material. This rocky material will coagulate into planetesimals which grow rapidly until they reach isolation mass. Around intermediate mass stars, viscous heating will push the critical radius for thermal ionization of the midplane out to around 1 AU. This will increase the isolation mass for solid cores. Planets formed here may migrate inwards due to type II migration, but they will induce the formation of subsequent giant planets at the outer edge of the gap they have opened. In this manner, gas giants can form around intermediate mass stars at a few AU.

Type
Contributed Papers
Copyright
Copyright © International Astronomical Union 2008

References

Balbus, S. A. & Hawley, J. F. 1991, ApJ, 376, 214CrossRefGoogle Scholar
Bodenheimer, P. & Pollack, J. B. 1986, Icarus, 67, 391CrossRefGoogle Scholar
Bryden, G., Różyczka, M., Lin, D. N. C., & Bodenheimer, P. 2000, ApJ, 540, 1091CrossRefGoogle Scholar
Cannizzo, J. K. 1992, ApJ, 385, 94CrossRefGoogle Scholar
Chiang, E. I. & Goldreich, P. 1997, ApJ, 490, 368CrossRefGoogle Scholar
Clarke, C. J. & Pringle, J. E. 2006, MNRAS, 370, L10CrossRefGoogle Scholar
D'Antona, F. & Mazzitelli, I. 1997, Memorie della Societa Astronomica Italiana, 68, 807Google Scholar
Ferguson, J. W., Alexander, D. R., Allard, F., Barman, T., Bodnarik, J. G., Hauschildt, P. H., Heffner-Wong, A., & Tamanai, A. 2005, ApJ, 623, 585CrossRefGoogle Scholar
Fleming, T. & Stone, J. M. 2003, ApJ, 585, 908CrossRefGoogle Scholar
Gammie, C. F. 1996, ApJ, 457, 355CrossRefGoogle Scholar
Garaud, P. 2007, ArXiv e-prints, 705Google Scholar
Garcia Lopez, R., Natta, A., Testi, L., & Habart, E. 2006, A&A, 459, 837Google Scholar
Haghighipour, N. & Boss, A. P. 2003, ApJ, 598, 1301CrossRefGoogle Scholar
Hirose, S., Krolik, J. H., & Stone, J. M. 2006, ApJ, 640, 901CrossRefGoogle Scholar
Ida, S. & Lin, D. N. C. 2005, ApJ, 626, 1045CrossRefGoogle Scholar
Johnson, J. A. 2007, ArXiv e-prints, 710Google Scholar
Klahr, H., Różyczka, M., Dziourkevitch, N., Wünsch, R., & Johansen, A. 2006, Turbulence in protoplanetary accretion disks: driving mechanisms and role in planet formation. (Planet Formation), 42CrossRefGoogle Scholar
Kretke, K. A. & Lin, D. N. C. 2007, ApJL, 664, L55CrossRefGoogle Scholar
Lodders, K. 2003, ApJ, 591, 1220CrossRefGoogle Scholar
Lovis, C. & Mayor, M. 2007, A&A, 472, 657Google Scholar
Miller, K. A. & Stone, J. M. 2000, ApJ, 534, 398CrossRefGoogle Scholar
Natta, A., Testi, L., & Randich, S. 2006, A&A, 452, 245Google Scholar
Pringle, J. E. 1981, ARA&A, 19, 137Google Scholar
Shakura, N. I. & Syunyaev, R. A. 1973, A&A, 24, 337Google Scholar
Umebayashi, T. 1983, Progress of Theoretical Physics, 69, 480CrossRefGoogle Scholar
Weidenschilling, S. J. 1977, MNRAS, 180, 57CrossRefGoogle Scholar
Wünsch, R., Gawryszczak, A., Klahr, H., & Różyczka, M. 2006, MNRAS, 367, 773CrossRefGoogle Scholar