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The internal structures of Uranus and Neptune remain unknown. In addition, sub-Neptunes are now thought to be the most common type of exoplanets. Understanding the physical processes that govern the interiors of such planets is therefore…

地球与行星天体物理 · 物理学 2025-11-19 Saburo Howard , Ravit Helled , Armin Bergermann , Ronald Redmer

Interior models of Uranus and Neptune often assume discrete layers, but sharp interfaces are expected only if major constituents are immiscible. Diffuse interfaces could arise if accretion favored a central concentration of the least…

地球与行星天体物理 · 物理学 2021-02-02 Elizabeth Bailey , David J. Stevenson

We present updated non-adiabatic and inhomogeneous evolution models for Uranus and Neptune, employing an interior composition of methane, ammonia, water, and rocks. Following formation trends of the gas giants, Uranus and Neptune formation…

地球与行星天体物理 · 物理学 2025-07-28 Roberto Tejada Arevalo

We present a new framework for constructing agnostic and yet physical models for planetary interiors and apply it to Uranus and Neptune. Unlike previous research that either impose rigid assumptions or rely on simplified empirical profiles,…

地球与行星天体物理 · 物理学 2026-01-14 Luca Morf , Ravit Helled

'Empirical' models (pressure vs. density) of Uranus and Neptune interiors constrained by the gravitational coefficients J_2, J_4, the planetary radii and masses, and Voyager solid-body rotation periods are presented. The empirical…

地球与行星天体物理 · 物理学 2015-05-20 Ravit Helled , John D. Anderson , Morris Podolak , Gerald Schubert

The brightness of Neptune is often found to be in accordance with an adiabatic interior, while the low luminosity of Uranus challenges this assumption. Here we apply revised equation of state data of hydrogen, helium, and water and compute…

地球与行星天体物理 · 物理学 2019-12-04 Ludwig Scheibe , Nadine Nettelmann , Ronald Redmer

Many planets in the solar system and across the galaxy have hydrogen-rich atmospheres overlying more heavy element-rich interiors with which they interact for billions of years. Atmosphere-interior interactions are thus crucial to…

地球与行星天体物理 · 物理学 2024-07-08 Akash Gupta , Lars Stixrude , Hilke E. Schlichting

Since the Voyager fly-bys of Uranus and Neptune, improved gravity field data have been derived from long-term observations of the planets' satellite motions, and modified shape and solid-body rotation periods were suggested. A faster…

地球与行星天体物理 · 物理学 2015-06-05 N. Nettelmann , R. Helled , J. J. Fortney , R. Redmer

Aptly named, ice giants such as Uranus and Neptune contain significant amounts of water. While this water cannot be present near the cloud tops, it must be abundant in the deep interior. We investigate the likelihood of a liquid water ocean…

天体物理学 · 物理学 2009-11-11 Sloane J. Wiktorowicz , Andrew P. Ingersoll

Uranus and Neptune are commonly considered ice giants, and it is often assumed that, in addition to a solar mix of hydrogen and helium, they contain roughly twice as much water as rock. This classical picture has led to successful models of…

地球与行星天体物理 · 物理学 2024-07-11 Uri Malamud , Morris Podolak , Joshua Podolak , Peter Bodenheimer

A comprehensive exploration of Uranus and Neptune is essential to understand the formation and evolution of the giant planets, in particular, solar system, in general, and, by extension, a vast population of exoplanets. Though core…

地球与行星天体物理 · 物理学 2020-06-25 Sushil K. Atreya , Mark H. Hofstadter , Joong Hyun In , Olivier Mousis , Kim Reh , Michael H. Wong

Sub-Neptunes represent the largest exoplanet demographic, yet their bulk compositions remain poorly understood. Recent studies suggested that only very cold planets, such as Uranus and Neptune, could experience stratification of volatiles…

It has been a common assumption of interior models that the outer planets of our solar system are convective, and that the internal temperature distributions are therefore adiabatic. This assumption is also often applied to exoplanets.…

地球与行星天体物理 · 物理学 2019-06-05 Morris Podolak , Ravit Helled , Gerald Schubert

Noble gases are accreted to the giant planets as part of the gas component of the planet-forming disk. While heavier noble gases can separate from the evolution of the hydrogen-rich gas, helium is thought to remain at the protosolar H/He…

地球与行星天体物理 · 物理学 2024-06-25 N. Nettelmann , M. Cano Amoros , N. Tosi , J. J. Fortney , R. Helled

The low luminosity of Uranus is a long-standing challenge in planetary science. Simple adiabatic models are inconsistent with the measured luminosity, which indicates that Uranus is non-adiabatic because it has thermal boundary layers…

地球与行星天体物理 · 物理学 2020-01-15 A. Vazan , R. Helled

The immiscibility of hydrogen-helium mixture under the temperature and pressure conditions of planetary interiors is crucial for understanding the structures of gas giant planets (e.g., Jupiter and Saturn). While the experimental probe at…

Ab initio free energy calculations are employed to derive the entropy of liquid and superionic water over a wide range of conditions in the interiors of Uranus and Neptune. The resulting adiabats are much shallower in pressure-temperature…

地球与行星天体物理 · 物理学 2025-08-26 Burkhard Militzer

C-H-N-O system is central for organic chemistry and biochemistry, and plays a major role in planetary science (dominating the composition of "ice giants" Uranus and Neptune). The inexhaustible chemical diversity of this system at normal…

材料科学 · 物理学 2021-06-09 Anastasia S. Naumova , Sergey V. Lepeshkin , Pavel V. Bushlanov , Artem R. Oganov

Determining the depth of atmospheric winds in the outer planets of the Solar System is a key topic in planetary science. We provide constraints on these depths in Uranus and Neptune via the total induced Ohmic dissipation, due to the…

地球与行星天体物理 · 物理学 2020-09-10 Deniz Soyuer , François Soubiran , Ravit Helled

The interior composition and structure of Uranus are ambiguous. It is unclear whether Uranus is composed of fully differentiated layers dominated by an icy mantle or has smooth compositional gradients. The Uranus Orbiter and Probe (UOP),…

地球与行星天体物理 · 物理学 2024-12-10 Zifan Lin , Sara Seager , Benjamin P. Weiss
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