- PII
- S30345170S0004629925090012-1
- DOI
- 10.7868/S3034517025090012
- Publication type
- Article
- Status
- Published
- Authors
- Volume/ Edition
- Volume 102 / Issue number 9
- Pages
- 745-762
- Abstract
- This work continues the analysis of the model for calculating the thermal structure of an axisymmetric protoplanetary disk, initiated in the paper by Pavlyuchenkov (2024). The model is based on the well-known Flux-Limited Diffusion (FLD) approximation with separate calculation of heating by direct stellar radiation (hereinafter referred to as the FLD method). In addition to the previously described FLD model with wavelength-averaged opacities, we present a multiband model mFLD, where the spectrum of thermal radiation is divided into several frequency bands. The model is based on an implicit finite-difference scheme for the equations of thermal radiation diffusion, which reduces to a system of linear algebraic equations written in hypermatrix form. A modified Gauss method for inverting the sparse hypermatrix of the original system of linear equations is proposed. The simulation results described in the article show that the midplane radial temperature profile obtained with the mFLD method has a variable slope in accordance with the reference Monte Carlo radiative transfer simulations. The mFLD model also qualitatively reproduces the non-isothermality of the temperature distribution along the angular coordinate near the midplane, which is not provided by the FLD method. However, quantitative differences remain between the reference temperature values and the results of mFLD. These differences are likely due to the diffusive nature of the FLD approximation. It is also shown that the characteristic times for the disk to reach thermal equilibrium within the mFLD[о] model can be significantly shorter than in FLD. This property should be taken into account when modeling non-stationary processes in protoplanetary disks within FLD-based models.
- Keywords
- протопланетные диски перенос излучения моделирование
- Date of publication
- 01.09.2025
- Year of publication
- 2025
- Number of purchasers
- 0
- Views
- 59
References
- 1. Y.N. Pavlyuchenkov, Astron. Rep. 68(11), 1045 (2024).
- 2. P.J. Armitage, arXiv:1509.06382 [astro-ph.SR] (2015).
- 3. G. Lesur, M. Flock, B. Ercolano, M. Lin, et al., in Protostars and Planets VII, Proc. of a Conference held 10–15 April 2023 at Kyoto, Japan; edited by S. Inutsuka, Y. Aikawa, T. Muto, K. Tomida, and M. Tamura (2023) (San Francisco, 2023), ASP Conf. Ser. 534, p. 465.
- 4. R. Teyssier and B. Commerçon, Frontiers in Astron. and Space Sci. 6, id. 51 (2019), arXiv:1907.08542 [astro-ph.IM].
- 5. R. Wünsch, Frontiers in Astron. and Space Sci. 11, id. 1346812 (2024), arXiv:2403.05410 [astro-ph.IM].
- 6. C.D. Levermore and G.C. Pomraning, 248, 321 (1981).
- 7. Y.N. Pavlyuchenkov, D.S. Wiebe, V.V. Akimkin, M.S. Khramtsova, and T. Henning, Monthly Not. Roy. Astron. Soc. 421(3), 2430 (2012), arXiv:1201.0642 [astro-ph.GA].
- 8. C.P. Dullemond, G. J. van Zadelhoff, A. Natta, Astron. Astrophys. 389, 464 (2002); arXiv: astro-ph/0204281.
- 9. B. van der Holst, G. Tóth, I.V. Sokolov, K.G. Powell, et al., Supp. 194(2), id. 23 (2011), arXiv:1101.3758 [astro-ph.SR].
- 10. N. Vaytet, E. Audit, G. Chabrier, B. Commercon, and J. Masson, Astron. and Astrophys. 543, id. A60 (2012), arXiv:1205.5143 [astro-ph.SR].
- 11. D. Mihalas, Stellar atmospheres (San Francisco: W.H. Freeman, 1978).
- 12. C.P. Dullemond, A. Juhasz, A. Pohl, F. Sereshti, R. Shetty, T. Peters, B. Commercon, and M. Flock, RADMC-3D: A multi-purpose radiative transfer tool, Astrophysics Source Code Library, record ascl:1202.015 (2012).