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  Global hydromagnetic simulations of protoplanetary disks with stellar irradiation and simplified thermochemistry

Gressel, O., Ramsey, J. P., Brinch, C., Nelson, R. P., Turner, N. J., & Bruderer, S. (2020). Global hydromagnetic simulations of protoplanetary disks with stellar irradiation and simplified thermochemistry. The Astrophysical Journal, 896(2): 126. doi:10.3847/1538-4357/ab91b7.

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Gressel, Oliver, Author
Ramsey, Jon P., Author
Brinch, Christian, Author
Nelson, Richard P., Author
Turner, Neal J., Author
Bruderer, Simon1, Author           
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1Infrared and Submillimeter Astronomy, MPI for Extraterrestrial Physics, Max Planck Society, ou_159889              

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 Abstract: Outflows driven by large-scale magnetic fields likely play an important role in the evolution and dispersal of protoplanetary disks and in setting the conditions for planet formation. We extend our 2D-axisymmetric nonideal MHD model of these outflows by incorporating radiative transfer and simplified thermochemistry, with the dual aims of exploring how heating influences wind launching and illustrating how such models can be tested through observations of diagnostic spectral lines. Our model disks launch magnetocentrifugal outflows primarily through magnetic tension forces, so the mass-loss rate increases only moderately when thermochemical effects are switched on. For typical field strengths, thermochemical and irradiation heating are more important than magnetic dissipation. We furthermore find that the entrained vertical magnetic flux diffuses out of the disk on secular timescales as a result of nonideal MHD. Through postprocessing line radiative transfer, we demonstrate that spectral line intensities and moment-1 maps of atomic oxygen, the HCN molecule, and other species show potentially observable differences between a model with a magnetically driven outflow and one with a weaker, photoevaporative outflow. In particular, the line shapes and velocity asymmetries in the moment-1 maps could enable the identification of outflows emanating from the disk surface.

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 Dates: 2020-06-19
 Publication Status: Published online
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 Identifiers: DOI: 10.3847/1538-4357/ab91b7
Other: LOCALID: 3250827
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Title: The Astrophysical Journal
Source Genre: Journal
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Publ. Info: Bristol; Vienna : IOP Publishing; IAEA
Pages: - Volume / Issue: 896 (2) Sequence Number: 126 Start / End Page: - Identifier: ISSN: 0004-637X
CoNE: https://pure.mpg.de/cone/journals/resource/954922828215_3
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