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Large Scale Galactic Structure

Published online by Cambridge University Press:  12 April 2016

Gerard Gilmore
Affiliation:
Institute of Astronomy, Madingley Road, Cambridge CB3 OKA, England
Rodrigo Ibata
Affiliation:
Institute of Astronomy, Madingley Road, Cambridge CB3 OKA, England

Abstract

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Modern models of Galaxy formation make fairly specific predictions which are amenable to detailed tests with galactic kinematic and chemical abundance data. For example, popular Cold Dark Matter models ‘predict’ growth of the Galaxy about a central core, which should contain the oldest stars. Later accretion of material forms the outer halo and the disks, while continuing accretion will continue to affect the kinematic structure of both the outer halo and the thin disk. This picture, which contains aspects of both the monolithic (‘ELS’) and the multifragment (‘Searle-Zinn’) pictures often discussed in chemical evolution models, makes some specific predictions which can be tested. The essential feature of these predictions is that they are believable only for the largest scale effects. Large scale properties of the Galaxy must be measured to test them. It is these studies which need large angular scale data. One specific example of current interest is the ‘prediction’ that mergers of small satellites are an essential feature of galactic evolution. This leads one to look for kinematic and spatial structures, and ‘moving groups’, as a primary test of such models.

Type
IX. Galactic Structure and Stellar Surveys
Copyright
Copyright © Astronomical Society of the Pacific 1995

References

Arnold, R. & Gilmore, G., 1992, MNRAS, 257, 225 CrossRefGoogle Scholar
Dubinski, J., 1994, ApJ, in pressGoogle Scholar
Eggen, O.J., 1987, In The Galaxy, Gilmore, G. & Carswell, R., eds, (Reidel), p. 211 Google Scholar
Fieli, M. & Tremaine, S., 1991, ARA&A, 29, 409 Google Scholar
Freeman, K., 1975, Galaxies and the Universe, 9, 409 Google Scholar
Frenk, C. & White, S., 1980, MNRAS, 193, 295 Google Scholar
Gilmore, G. & Wyse, R.F.G., 1994, In First Light in the Universe, Rocca-Volmerange, B. et al., eds, (Editions Frontieres), in pressGoogle Scholar
Gilmore, G., Wyse, R.F.G., & Kuijken, K., 1989, ARA&A, 27, 555 Google Scholar
Hernquist, L., 1990, ApJ, 356, 359 Google Scholar
Ibata, R. & Gilmore, G., 1993, In Galactic Bulges, Proc. IAU Symp. 153, DeJonghe, H. & Harbing, H., eds, p.299 Google Scholar
Ibata, R., Gilmore, G. & Irwin, M., 1994, MNRAS, submittedGoogle Scholar
Kent, S., 1992, ApJ, 387, 181 CrossRefGoogle Scholar
Kinman, T., 1992, In Variable Stars and Galaxies, Warner, B., ed., PASP, 30, 19 Google Scholar
Kuijken, K. & Tremaine, S., 1994, ApJ, in pressGoogle Scholar
McWilliam, A. & Rich, M., 1994, ApJS, 91, 749 Google Scholar
Ostriker, J., 1993, ARA&A, 31, 689 Google Scholar
Ratnatunga, K. & Freeman, K., 1989, ApJ, 339, 126 Google Scholar
Ryan, S. & Norris, J., 1991, AJ, 101, 1865 CrossRefGoogle Scholar
Silk, J. & Wyse, R.F.G., 1993, Physics Reports, 231, 293 Google Scholar
Tremaine, S., 1994, In Back to the Galaxy, Trimble, V., ed., in pressGoogle Scholar
van der Kruit, P., 1990, In The Milky Way as a Galaxy, King, G. Gilmore & van der Kruit, P., eds, (USB)Google Scholar
Wyse, R.F.G. & Gilmore, G., 1992, AJ, 104, 144 Google Scholar
Wyse, R.F.G. & Gilmore, G., 1993, In Galaxy Evolution: The Milky Way Perspective Majewski, S., ed., (ASP), p. 209 Google Scholar
Zinn, R., 1993, In The Globular Cluster-Galaxy Connection, Smith, G. & Brodie, J., eds, (ASP), p. 38 Google Scholar