Makemake + Sedna: A Continuum Radiation Transport and Photoionization Framework for Astrophysical Newtonian Fluid Dynamics
arXiv:2009.12374 · doi:10.3847/1538-4365/ab9a36
Abstract
Astrophysical fluid flow studies often encompass a wide range of physical processes to account for the complexity of the system under consideration. In addition to gravity, a proper treatment of thermodynamic processes via continuum radiation transport and/or photoionization is becoming the state of the art. We present a major update of our continuum radiation transport module, MAKEMAKE, and a newly developed module for photoionization, SEDNA, coupled to the magnetohydrodynamics code PLUTO. These extensions are currently not publicly available; access can be granted on a case-by-case basis. We explain the theoretical background of the equations solved, elaborate on the numerical layout, and present a comprehensive test suite for radiation-ionization hydrodynamics. The grid-based radiation and ionization modules support static one-dimensional, two-dimensional, and three-dimensional grids in Cartesian, cylindrical, and spherical coordinates. Each module splits the radiation field into two components, one originating directly from a point source - solved using a ray-tracing scheme - and a diffuse component - solved with a three-dimensional flux-limited diffusion (FLD) solver. The FLD solver for the continuum radiation transport makes use of either the equilibrium one-temperature approach or the linearization two-temperature approach. The FLD solver for the photoionization module enables accounting for the temporal evolution of the radiation field from direct recombination of free electrons into hydrogen's ground state as an alternative to the on-the-spot approximation. A brief overview of completed and ongoing scientific studies is given to explicitly illustrate the multipurpose nature of the numerical framework presented.
References in corpus (20)
- PLUTO: a Numerical Code for Computational Astrophysics
- A High Order Godunov Scheme with Constrained Transport and Adaptive Mesh Refinement for Astrophysical MHD
- Circumventing the radiation pressure barrier in the formation of massive stars via disk accretion
- Three-dimensional simulation of massive star formation in the disk accretion scenario
- Hydrodynamics of Embedded Planets' First Atmospheres. II. A Rapid Recycling of Atmospheric Gas
- A scheme for radiation pressure and photon diffusion with the M1 closure in RAMSES-RT
- On the existence of accretion-driven bursts in massive star formation
- Supersonic Gas Streams Enhance the Formation of Massive Black Holes in the Early Universe
- Hydrodynamics of embedded planets' first atmospheres - III. The role of radiation transport for super-Earth planets
- Forming spectroscopic massive proto-binaries by disk fragmentation
- Protostellar Outflows and Radiative Feedback from Massive Stars. II. Feedback, Star Formation Efficiency, and Outflow Broadening
- Protostellar Outflows and Radiative Feedback from Massive Stars
- The Planetary Accretion Shock: I. Framework for Radiation-hydrodynamical Simulations and First Results
- On the effects of optically thick gas (disks) around massive stars
- Multigroup radiation hydrodynamics with flux-limited diffusion and adaptive mesh refinement
- Disk Kinematics and Stability in High-Mass Star Formation: Linking Simulations and Observations
- Birth of convective low-mass to high-mass second Larson cores
- A general hybrid radiation transport scheme for star formation simulations on an adaptive grid
- Radiation hydrodynamics including irradiation and adaptive mesh refinement with AZEuS. I. Methods
- The Dynamic Proto-atmospheres around Low-Mass Planets with Eccentric Orbits
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- Steady State by Recycling prevents Premature Collapse of Protoplanetary Atmospheres
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- VETTAM: A scheme for radiation hydrodynamics with adaptive mesh refinement using the variable Eddington tensor method
- Far and extreme UV radiation feedback in molecular clouds and its influence on the mass and size of star clusters
- The evolution of circumstellar discs in the Galactic Centre: an application to the G-clouds
- Disk fragmentation around a massive protostar: a comparison of two three-dimensional codes
- Stability of an Ionization Front in Bondi Accretion