Multidimensional half-moment multigroup radiative transfer. Improving moment-based thermal models of circumstellar disks
arXiv:2504.13999 · doi:10.1051/0004-6361/202554994
Abstract
Common moment-based radiative transfer methods, such as flux-limited diffusion (FLD) and the M1 closure, suffer from artificial interactions between crossing beams. In protoplanetary disks, this leads to an overestimation of the midplane temperature due to the merging of inward and outward vertical fluxes. Methods that avoid these artifacts typically require angular discretization, which can be computationally expensive. In the spirit of the two-stream approximation, we introduced a half-moment (HM) closure that integrates the radiative intensity over hemispheres, thereby suppressing beam interactions along a fixed spatial direction. We derived a multidimensional HM closure via entropy maximization and replaced this closure with an approximate expression that closely matches it, coinciding with it in the diffusion and free-streaming regimes while remaining expressible through simple operations. We implemented HM and M1 closures via implicit-explicit schemes, including multiple frequency groups. We tested these methods in numerical benchmarks such as computing the temperature in an irradiated disk around a T Tauri star, comparing our results with Monte Carlo (MC) radiative transfer simulations. The HM closure correctly reproduces the diffusion limit and prevents crossing flux interactions in a chosen spatial direction. In disk simulations, our multigroup HM method closely matches midplane temperature distributions obtained with classical MC methods. While the M1 closure produces midplane temperatures 44% higher than MC with one frequency group and 21% higher with 22 groups, HM reduces this discrepancy to 6% with 22 groups. Even with just three groups, HM significantly outperforms M1, with maximum departures of 8% compared to M1's 23%. Our results show that combining HM with a multigroup treatment yields more realistic disk temperatures than M1, particularly in optically thick regions.
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References in corpus (41)
- Array Programming with NumPy
- PLUTO: a Numerical Code for Computational Astrophysics
- RAMSES-RT: Radiation hydrodynamics in the cosmological context
- The Stagger-grid: A Grid of 3D Stellar Atmosphere Models - I. Methods and General Properties
- Semi-implicit scheme for treating radiation under M1 closure in general relativistic conservative fluid dynamics codes
- HELIOS: An Open-source, GPU-accelerated Radiative Transfer Code For Self-consistent Exoplanetary Atmospheres
- The 2D Continuum Radiative Transfer Problem: Benchmark Results for Disk Configurations
- PICASO 3.0: A One-Dimensional Climate Model for Giant Planets and Brown Dwarfs
- A Godunov Method for Multidimensional Radiation Magnetohydrodynamics based on a variable Eddington tensor
- A Radiation Transfer Solver for Athena using Short Characteristics
- A Two-moment Radiation Hydrodynamics Module in Athena Using a Time-explicit Godunov Method
- An Algorithm for Radiation Magnetohydrodynamics Based on Solving the Time-dependent Transfer Equation
- Radiation Magnetohydrodynamics In Global Simulations Of Protoplanetary Disks
- A numerical model for multigroup radiation hydrodynamics
- Mapping the Conditions for Hydrodynamic Instability on Steady State Accretion Models of Protoplanetary Disks
- An Implicit Finite Volume Scheme to Solve the Time Dependent Radiation Transport Equation Based on Discrete Ordinates
- Monte-Carlo closure for moment-based transport schemes in general relativistic radiation hydrodynamics simulations
- Global 3-D Radiation Magnetohydrodynamic Simulations for FU Ori's Accretion Disk and Observational Signatures of Magnetic Fields
- On the Modified Random Walk for Monte-Carlo Radiation Transfer
- Multigroup radiation hydrodynamics with flux-limited diffusion and adaptive mesh refinement
- Beyond moments: relativistic Lattice-Boltzmann methods for radiative transport in computational astrophysics
- A radiative transfer module for relativistic magnetohydrodynamics in the PLUTO code
- Two-moment scheme for general-relativistic radiation hydrodynamics: a systematic description and new applications
- A new hybrid radiative transfer method for massive star formation
- Multi-Frequency General Relativistic Radiation-Hydrodynamics with Closure
- The importance of thermal torques on the migration of planets growing by pebble accretion
- A two-moment radiation hydrodynamics scheme applicable to simulations of planet formation in circumstellar disks
- Tree-based solvers for adaptive mesh refinement code FLASH -- II: radiation transport module TreeRay
- Modeling planet-induced gaps and rings in ALMA disks: the role of in-plane radiative diffusion
- Three-temperature radiation hydrodynamics with PLUTO: Tests and applications to protoplanetary disks
- Arepo-MCRT: Monte Carlo Radiation Hydrodynamics on a Moving Mesh
- Unbiased Monte Carlo continuum radiative transfer in optically thick regions
- No self-shadowing instability in 2D radiation-hydrodynamical models of irradiated protoplanetary disks
- Vertical shear instability in two-moment radiation-hydrodynamical simulations of irradiated protoplanetary disks I. Angular momentum transport and turbulent heating
- Vertical shear instability in two-moment radiation-hydrodynamical simulations of irradiated protoplanetary disks II. Secondary instabilities and stability regions
- Radiation transport methods in star formation simulations
- Three-temperature radiation hydrodynamics with PLUTO: Thermal and kinematic signatures of accreting protoplanets
- Feasibility of detecting and characterizing embedded low-mass giant planets in gaps in the VIS/NIR wavelength range
- Non-LTE radiation hydrodynamics in PLUTO
- Can gap-edge illumination excite spirals in protoplanetary disks? Three-temperature radiation hydrodynamics and NIR image modelling
- Monte Carlo post-processing for radiation hydro simulations of accreting planets in protoplanetary disks