English
 
Help Privacy Policy Disclaimer
  Advanced SearchBrowse

Item

ITEM ACTIONSEXPORT
  Photochemistry and heating/cooling of the multiphase interstellar medium with UV radiative transfer for magnetohydrodynamic simulations

Kim, J.-G., Gong, M., Kim, C.-G., & Ostriker, E. C. (2022). Photochemistry and heating/cooling of the multiphase interstellar medium with UV radiative transfer for magnetohydrodynamic simulations. The Astrophysical Journal Supplement Series, 264(1): 10. doi:10.3847/1538-4365/ac9b1d.

Item is

Files

show Files
hide Files
:
Photochemistry and heating cooling of the multiphase interstellar medium with UV radiative transfer for magnetohydrodynamic simulations.pdf (Any fulltext), 5MB
 
File Permalink:
-
Name:
Photochemistry and heating cooling of the multiphase interstellar medium with UV radiative transfer for magnetohydrodynamic simulations.pdf
Description:
-
OA-Status:
Visibility:
Private
MIME-Type / Checksum:
application/pdf
Technical Metadata:
Copyright Date:
-
Copyright Info:
-
License:
-

Locators

show

Creators

show
hide
 Creators:
Kim, Jeong-Gyu, Author
Gong, Munan1, Author           
Kim, Chang-Goo, Author
Ostriker, Eve C., Author
Affiliations:
1Center for Astrochemical Studies at MPE, MPI for Extraterrestrial Physics, Max Planck Society, ou_1950287              

Content

show
hide
Free keywords: -
 Abstract: We present an efficient heating/cooling method coupled with chemistry and UV radiative transfer that can be applied to numerical simulations of the interstellar medium (ISM). We follow the time-dependent evolution of hydrogen species (H2, H, H+), assume carbon/oxygen species (C, C+, CO, O, and O+) are in formation–destruction balance given the nonsteady hydrogen abundances, and include essential heating/cooling processes needed to capture the thermodynamics of all ISM phases. UV radiation from discrete point sources and the diffuse background is followed through adaptive ray tracing and a six-ray approximation, respectively, allowing for H2 self-shielding; cosmic-ray heating and ionization are also included. To validate our methods and demonstrate their application for a range of density, metallicity, and radiation fields, we conduct a series of tests, including the equilibrium curves of thermal pressure versus density, the chemical and thermal structure in photodissociation regions, H I-to-H2 transitions, and the expansion of H II regions and radiative supernova remnants. Careful treatment of photochemistry and cosmic-ray ionization is essential for many aspects of ISM physics, including identifying the thermal pressure at which cold and warm neutral phases coexist. We caution that many current heating and cooling treatments used in galaxy formation simulations do not reproduce the correct thermal pressure and ionization fraction in the neutral ISM. Our new model is implemented in the MHD code Athena and incorporated in the TIGRESS simulation framework, for use in studying the star-forming ISM in a wide range of environments.

Details

show
hide
Language(s):
 Dates: 2022-12-19
 Publication Status: Published online
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: -
 Identifiers: DOI: 10.3847/1538-4365/ac9b1d
 Degree: -

Event

show

Legal Case

show

Project information

show

Source 1

show
hide
Title: The Astrophysical Journal Supplement Series
Source Genre: Journal
 Creator(s):
Affiliations:
Publ. Info: -
Pages: - Volume / Issue: 264 (1) Sequence Number: 10 Start / End Page: - Identifier: -