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- W3098987100 abstract "Circumplanetary disks (CPDs) regulate the late accretion to the giant planet and serve as the birthplace for satellites. Understanding their characteristics via simulations also helps to prepare for their observations. Here we study disks around 1, 3, 5, and 10 MJup planets with 3D global radiative hydrodynamic simulations with sub-planet peak resolution and various planetary temperatures. We found that as the 1 MJup planet radiates away its formation heat, the circumplanetary envelope transitions to a disk between and 4000 K. In the case of 3–10 MJup planets, a disk always forms. The temperature profile of the CPDs is very steep, the inner 1/6th is higher than the silicate condensation temperature, and the entire disk is higher than the water freezing point, making satellite formation impossible in this early stage (<1 Myr). Satellites might form much later and first in the outer parts of the disk, migrating inwards later on. Our disk masses are 1, 7, and 20 for the 1, 3, 5, and 10 MJup gas giants, respectively, and we provide an empirical formula to estimate the subdisk masses based on the planet- and circumstellar disk (CSD) mass. Our finding is that the cooler the planet, the lower the temperature of the subdisk, and the higher the vertical influx velocities. The planetary gap is also both deeper and wider. We also show that the gaps in 2D and 3D are different. The subdisk eccentricity increases with and violently interacts with the CSD, making satellite-formation less likely when ." @default.
- W3098987100 created "2020-11-23" @default.
- W3098987100 creator A5035140549 @default.
- W3098987100 date "2017-06-20" @default.
- W3098987100 modified "2023-09-24" @default.
- W3098987100 title "Effects of the Planetary Temperature on the Circumplanetary Disk and on the Gap" @default.
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- W3098987100 doi "https://doi.org/10.3847/1538-4357/aa7515" @default.
- W3098987100 hasPublicationYear "2017" @default.
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