Hostname: page-component-77c89778f8-swr86 Total loading time: 0 Render date: 2024-07-18T06:38:26.845Z Has data issue: false hasContentIssue false

1. Sizes and Albedos of the Larger Asteroids

Published online by Cambridge University Press:  12 April 2016

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.

The purpose of the present paper is to review all asteroid diameter measurements, current through mid-1976, and to combine them in a consistent way to give the best available estimates for a sample totalling 187 objects. From these diameters it is possible to determine the size-distributions of minor planets down to diameters of 50 km in the inner belt and 100 km in the outer belt. The associated albedos further indicate the distribution of objects of the C, S, and M classes throughout the belt.

Type
Part IV. Physical Nature of Asteroids
Copyright
Copyright © A.H. Delsemme 1977

References

Allen, D. A. 1970, Nature, 227, 158159.Google Scholar
Barnard, E. 1902, Astron. Nach., 157, 260268.Google Scholar
Bowell, E. T., Chapman, C. R., Gradie, J.C., Morrison, D., and Zellner, B. 1977, Icarus, to be submitted.Google Scholar
Chapman, C. R., Morrison, D., and Zellner, B. 1975, Icarus, 25, 104130.Google Scholar
Cruikshank, D. P. 1976, Icarus, in press.Google Scholar
Cruikshank, D. P., and Morrison, D. 1973, Icarus, 20, 477481 CrossRefGoogle Scholar
Dollfus, A. 1971, in Physical Studies of Minor Planets, NASA SP-267 (Gehrels, T., ed.), pp. 2532, U.S. Government Printing Office, Washington, D.C. Google Scholar
Gehrels, T. 1977, this volume.Google Scholar
Hansen, O. L. 1976, Astron. J., 81, 7484.Google Scholar
Hertz, H. G. 1968, Science, 160, 299300.Google Scholar
Jones, T. J., and Morrison, D. 1974, Astron. J., 79, 892895.Google Scholar
KenKnight, C. E., Rosenberg, D. L., and Wehner, G. K. 1967, J. Geophys. Res., 72, 31053129.Google Scholar
Matson, D. L. 1972, Ph.D. Thesis, California Institute of Technology.Google Scholar
Morrison, D. 1973, Icarus, 19, 114.Google Scholar
Morrison, D. 1974, Astrophys. J., 194, 203212.Google Scholar
Morrison, D. 1976a, Icarus, 28.Google Scholar
Morrison, D. 1977a, Astrophys. J., in press.Google Scholar
Morrison, D. 1977b, Icarus, to be submitted.Google Scholar
Morrison, D. and Chapman, C. R. 1976, Astrophys. J., 204, 934939.Google Scholar
Morrison, D. Gradie, J. C., and Rieke, G. H. 1976, Nature, 260, 691.Google Scholar
Schubart, J. 1974, Astron. Astrophys., 30, 289292.Google Scholar
Van Hcuten, C.J. 1971, in Physical Studies of Minor Planets, NASA SP-267 (Gehrels, T., ed.), pp. 183186, U.S. Government Printing Office, Washington, D.C. Google Scholar
Van Houten, C. J., Van Houten-Groeneveld, I., Herget, P., and Gehrels, T. 1970, Astron. Astrophys. Suppl., 2, 339448.Google Scholar
Veverka, J. 1971, Icarus, 15, 1117.Google Scholar
Widorn, T. 1967, Amm. Univ. Sternw. Wien, 27, 112119.Google Scholar
Zellner, B. 1975, Astrophys. J., 198, L45L47.Google Scholar
Zellner, B., Gehrels, T., and Gradie, J. 1974, Astron. J., 79, 11001110.Google Scholar
Zellner, B., and Gradie, J. 1976, Astron. J., in press.Google Scholar
Zellner, B., Morrison, D., and Leake, M. 1977, Meteoritics, in preparation.Google Scholar