Published August 1982 | Version v1
Journal article

Formation of the giant planets

  • 1. California Inst. of Tech., Pasadena (USA). Div. of Geological and Planetary Sciences

Description

Observational constraints on interior models of the giant planets indicate that these planets were all much hotter when they formed and they all have rock and/or ice cores of ten to thirty earth masses. These cores are probably soluble in the envelopes above, especially in Jupiter and Saturn, and are therefore likely to be primordial. They persist despite the continual upward mixing by thermally driven convection throughout the age of the solar system, because of the inefficiency of double-diffusive convection. Thus, these planets most probably formed by the hydrodynamic collapse of a gaseous envelope onto a core rather than by direct instability of the gaseous solar nebula. Recent calculations by Mizuno show that this formation mechanism may explain the similarity of giant planet core masses. Problems remain however, and no current model is entirely satisfactory in explaining the properties of the giant planets and simultaneously satisfying the terrestrial planet constraints. Satellite systematics and protoplanetary disk nebulae are also discussed and related to formation conditions. (author)

Additional details

Publishing Information

Journal Title
Planet. Space Sci.
Journal Volume
30
Journal Issue
8
Series
Planet. Space Sci.
Journal Page Range
755-764
ISSN
0032-0633

Conference

Title
IAMAP/ICPAE symposium 'Origin and evolution of planetary atmospheres'.
Dates
17 - 18 Aug 1981.
Place
Hamburg (Germany, F.R.).

INIS

Country of Publication
United Kingdom
Country of Input or Organization
United Kingdom
INIS RN
14716286
Subject category
S79: ASTROPHYSICS, COSMOLOGY AND ASTRONOMY;
Resource subtype / Literary indicator
Conference
Descriptors DEI
CHEMICAL COMPOSITION; CONVECTION; COSMIC GASES; COSMOLOGICAL MODELS; GRAVITATIONAL COLLAPSE; MASS; ORIGIN; PLANETS; PROTOPLANETS; SATELLITES; SOLAR NEBULA; SOLAR SYSTEM EVOLUTION; TEMPERATURE DEPENDENCE
Descriptors DEC
ENERGY TRANSFER; FLUIDS; GASES; HEAT TRANSFER; MATHEMATICAL MODELS; NEBULAE