Can WNM survive inside Molecular Clouds ?
arXiv:astro-ph/0510389 · doi:10.1086/505316
Abstract
Recent high resolution numerical simulations have suggested that the interstellar atomic hydrogen clouds have a complex two-phase structure. Since molecular clouds form through the contraction of HI gas, the question arises as to whether this structure is maintained in the molecular phase or not. Here we investigate whether the warm neutral atomic hydrogen (WNM) can exist in molecular clouds. We calculate how far a piece of WNM which is not heated by the UV photons could penetrate into the cloud, and find that in the absence of any heating it is unlikely that large fraction of WNM survives inside high pressure molecular clouds. We then consider two possible heating mechanisms, namely dissipation of turbulent energy and dissipation of MHD waves propagating in the WNM inside the cloud. We find that the second one is sufficient to allow the existence of WNM inside a molecular cloud of size 1 pc having pressure equal to . This result suggests the possibility that channels of magnetised WMN may provide efficient energy injection for sustaining internal turbulence which otherwise decays in a crossing time.
accepted for publication in ApJ
References in corpus (7)
- Thermal condensation in a turbulent atomic hydrogen flow
- The Millennium Arecibo 21-cm Absorption Line Survey. IV. Statistics of Magnetic Field, Column Density, and Turbulence
- Molecular cloud evolution. I. Molecular cloud and thin CNM sheet formation
- Global Dynamical Evolution of the ISM in Star Forming Galaxies - I. High Resolution 3D HD and MHD Simulations: Effect of the Magnetic Field
- Formation of Structure in Molecular Clouds: A Case Study
- Confinement-Driven Spatial Variations in the Cosmic Ray Flux
- Influence of Alfven waves on the Thermal Instability in the Interstellar Medium
Cited by in corpus (27)
- Theory of Star Formation
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- Clump morphology and evolution in MHD simulations of molecular cloud formation
- From the warm magnetized atomic medium to molecular clouds
- The Birth of Molecular Clouds: Formation of Atomic Precursors in Colliding Flows
- Formation of Turbulent and Magnetized Molecular Clouds via Accretion Flows of HI Clouds
- Magnetohydrodynamic Simulations of Disk Galaxy Formation: the Magnetization of The Cold and Warm Medium
- Two-Fluid MHD Simulations of Converging HI Flows in the Interstellar Medium. I: Methodology and Basic Results
- Molecular Cloud Evolution III. Accretion vs. stellar feedback
- The Virial Balance of Clumps and Cores in Molecular Clouds
- Molecular Cloud Evolution V. Cloud Destruction by Stellar Feedback
- The Effect of Projection on Derived Mass-Size and Linewidth-Size Relationships
- The Nature of the Velocity Field in Molecular Clouds. I. The Non-Magnetic Case
- H2 distribution during formation of multiphase molecular clouds
- Cold and warm atomic gas around the Perseus molecular cloud I: Basic Properties
- On the Structure of the Turbulent Interstellar Clouds
- Formation and Collapse of Quiescent Cloud Cores Induced by Dynamic Compressions
- The HI Probability Distribution Function and the Atomic-to-Molecular Transition in Molecular Clouds
- The role of neutral hydrogen in setting the abundances of molecular species in the Milky Way's diffuse interstellar medium. I. Observational constraints from ALMA and NOEMA
- Compression of turbulent magnetized gas in Giant Molecular Clouds
- Long-lived Magnetic-Tension-Driven Modes in a Molecular Cloud
- Molecular Cloud Evolution
- Cloud Dispersal in Turbulent Flows
- Interstellar Turbulence and Star Formation
- Synthetic Observations of Carbon Lines of Turbulent Flows in Diffuse Multiphase Interstellar Medium
- Long-Term Evolution of Decaying MHD Turbulence in the Multiphase ISM
- Reflection and dissipation of Alfvén waves in interstellar clouds