Connecting gravity field, moment of inertia, and core properties in Jupiter through empirical structure models
arXiv:2101.12508 · doi:10.3847/1538-4357/abdfd4
Abstract
Constraining Jupiter's internal structure is crucial for understanding its formation and evolution history. Recent interior models of Jupiter that fit Juno's measured gravitational field suggest an inhomogeneous interior and potentially the existence of a diluted core. These models, however, strongly depend on the model assumptions and the equations of state used. A complementary modelling approach is to use empirical structure models. These can later be used to reveal new insights on the planetary interior and be compared to standard models. Here we present empirical structure models of Jupiter where the density profile is constructed by piecewise-polytropic equations. With these models we investigate the relation between the normalized moment of inertia (MoI) and the gravitational moments and . Given that only the first few gravitational moments of Jupiter are measured with high precision, we show that an accurate and independent measurement of the MoI value could be used to further constrain Jupiter's interior. An independent measurement of the MoI with an accuracy better than could constrain Jupiter's core region and density discontinuities in its envelope. We find that models with a density discontinuity at 1 Mbar, as would produce a presumed hydrogen-helium separation, correspond to a fuzzy core in Jupiter. We next test the appropriateness of using polytropes, by comparing them with empirical models based on polynomials. We conclude that both representations result in similar density profiles and ranges of values for quantities like core mass and MoI.
16 pages, 12 figures, 5 tables, accepted for publication in ApJ
References in corpus (7)
- Comparing Jupiter interior structure models to Juno gravity measurements and the role of a dilute core
- New models of Jupiter in the context of Juno and Galileo
- Phase diagram of hydrogen and a hydrogen-helium mixture at planetary conditions by Quantum Monte Carlo simulations
- Jupiter internal structure: the effect of different equations of state
- Models of Saturn's Interior Constructed with Accelerated Concentric Maclaurin Spheroid Method
- Low- and high-order gravitational harmonics of rigidly rotating Jupiter
- Empirical Models of Pressure and Density in Saturn's Interior: Implications for the Helium Concentration, its Depth Dependence, and Saturn's Precession Rate
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