Magnetohydrostatic Equilibrium Structure and Mass of Filamentary Isothermal Cloud Threaded by Lateral Magnetic Field
arXiv:1402.3033 · doi:10.1088/0004-637X/785/1/24
Abstract
Herschel observation has recently revealed that interstellar molecular clouds consist of many filaments. Polarization observations in optical and infrared wavelengths indicate that the magnetic field often runs perpendicular to the filament. In this paper, the magnetohydrostatic configuration of isothermal gas is studied, in which the thermal pressure and the Lorentz force are balanced against the self-gravity and the magnetic field is globally perpendicular to the axis of the filament. The model is controlled by three parameters: center-to-surface density ratio (ρ_c/ρ_s), plasma βof surrounding interstellar gas (β_0) and the radius of the hypothetical parent cloud normalized by the scale-height (R'_0), although there remains a freedom how the mass is distributed against the magnetic flux (mass loading). In the case that R'_0 is small enough, the magnetic field plays a role in confining the gas. However, the magnetic field generally has an effect in supporting the cloud. There is a maximum line-mass (mass per unit length) above which the cloud is not supported against the gravity. Compared with the maximum line-mass of non-magnetized cloud (2c_s^2/G, where c_s and G represent respectively the isothermal sound speed and the gravitational constant), that of the magnetized filament is larger than the non-magnetized one. The maximum line-mass is numerically obtained as λ_max \simeq 0.24 Φ_cl/G^1/2 + 1.66 c_s^2/G, where Φ_cl represents one half of the magnetic flux threading the filament per unit length. The maximum mass of the filamentary cloud is shown to be significantly affected by the magnetic field when the magnetic flux per unit length exceeds Φ_cl \gtrsim 3 pc μG (c_s/190 m s^-1)^2.
The Astrophysical Journal in press
References in corpus (1)
Cited by in corpus (44)
- Characterizing the properties of nearby molecular filaments observed with Herschel
- The link between turbulence, magnetic fields, filaments, and star formation in the Central Molecular Zone cloud G0.253+0.016
- On the universality of interstellar filaments: theory meets simulations and observations
- Cloud-cloud collisions and triggered star formation
- The impact of turbulence and magnetic field orientation on star forming filaments
- Planck intermediate results. XXXIII. Signature of the magnetic field geometry of interstellar filaments in dust polarization maps
- ALMA observations of dust polarization and molecular line emission from the Class 0 protostellar source Serpens SMM1
- Submillimeter and Far-Infrared Polarimetric Observations of Magnetic Fields in Star-Forming Regions
- Dust polarized emission observations of NGC 6334; BISTRO reveals the details of the complex but organized magnetic field structure of the high-mass star-forming hub-filament network
- From diffuse gas to dense molecular cloud cores
- The role of molecular filaments in the origin of the prestellar core mass function and stellar initial mass function
- Classification of Filament Formation Mechanisms in Magnetized Molecular Clouds
- GMC Collisions as Triggers of Star Formation. I. Parameter Space Exploration with 2D Simulations
- Mapping the magnetic field in the Taurus/B211 filamentary cloud with SOFIA HAWC+ and comparing with simulation
- MHD simulation of the formation of clumps and filaments in quiescent diffuse medium by thermal instability
- The JCMT BISTRO Survey: A Spiral Magnetic Field in a Hub-filament Structure, Monoceros R2
- Magnetic fields in star forming systems (I): Idealized synthetic signatures of dust polarization and Zeeman splitting in filaments
- Probing the cold magnetized Universe with SPICA-POL (B-BOP)
- Massive core/star formation triggered by cloud-cloud collision: Effect of magnetic field
- Structure and Stability of Filamentary Clouds Supported by Lateral Magnetic Field
- A Magnetic Ribbon Model for Star-Forming Filaments
- Magnetic Field Structure in Spheroidal Star-Forming Clouds
- Fragmentation of Filamentary Cloud Permeated by Perpendicular Magnetic Field
- Witnessing the fragmentation of a filament into prestellar cores in Orion B/NGC 2024
- Dissecting the super-critical filaments embedded in the 0.5 pc subsonic region of Barnard 5
- Magnetic tension and instabilities in the Orion A integral shaped filament
- Polytropic models of filamentary interstellar clouds -II. Helical magnetic fields
- Fast deuterium fractionation in magnetized and turbulent filaments
- The JCMT BISTRO Survey: Evidence for Pinched Magnetic Fields in Quiescent Filaments of NGC 1333
- The widths of magnetised filaments in molecular clouds
- Magnetohydrostatic Equilibrium Structure and Mass of Polytropic Filamentary Cloud Threaded by Lateral Magnetic Field
- Ambipolar diffusion regulated collapse of filaments threaded by perpendicular magnetic fields
- The origin of a universal filament width in molecular clouds
- Fragmentation of Filamentary Cloud Permeated by Perpendicular Magnetic Field II. Dependence on the Initial Density Profile
- Distortion of Magnetic Fields in a Starless Core VI: Application of Flux Freezing Model and Core Formation of FeSt 1-457
- Universal Properties of Dense Clumps in Magnetized Molecular Clouds Formed through Shock Compression of Two-phase Atomic Gases
- Velocity-Coherent Substructure in TMC-1: Inflow and Fragmentation
- Simulation of Head-on Collisions Between Filamentary Molecular Clouds Threaded by a Lateral Magnetic Field and Subsequent Evolution
- A 1000 AU Scale Molecular Outflow Driven by a Protostar with an age of <4000 Years
- Instability and Evolution of Shocked Clouds Formed by Orthogonal Collisions between Magnetized Filamentary Molecular Clouds
- Ionisation in Turbulent Magnetic Molecular Clouds I. Effect on Density and Mass-to-Flux Ratio Structures
- Molecular Cloud Fragmentation and Core Collapse
- Evolution of compressed clouds formed by filament coalescence. I. Oblique collisions
- Non-ideal MHD and protostellar feedback effects on disc formation and evolution in numerical simulations of star cluster formation