Origin of Molecular Outflow Determined from Thermal Dust Polarization
arXiv:1011.0125 · doi:10.1093/pasj/63.1.147
Abstract
The observational expectation of polarization measurements of thermal dust radiation is investigated to find information on molecular outflows based on magnetohydrodynamical (MHD) and radiation transfer simulations. There are two major proposed models for the driving of molecular outflows: (1) molecular gas is accelerated by a magnetic pressure gradient or magnetocentrifugal wind mechanism before the magnetic field and molecular gas are decoupled, (2) the linear momentum of a highly collimated jet is transferred to the ambient molecular gas. In order to distinguish between these two models, it is crucial to observe the configuration of the magnetic field. An observation of a toroidal magnetic field is strong evidence that the first of the models is appropriate. In this paper, we calculated the polarization distribution of thermal dust radiation due to the alignment of dust grains along the magnetic field using molecular outflow data calculated by two-dimensional axisymmetric MHD simulations. An asymmetric distribution around the z-axis is characteristic for magnetic fields composed of both poloidal and toroidal components. We determined that the outflow has a low polarization degree compared with the envelope and that the envelope and outflow have different polarization directions (B-vector), namely, the magnetic field within the envelope is parallel to the global magnetic field lines while the magnetic field of the outflow is perpendicular to it. Thus we have demonstrated that the point-symmetric (rather than axisymmetric) distributions of low polarization regions indicate that molecular outflows are likely to be magnetically driven. Observations of this polarization distribution with tools such as ALMA would confirm the origin of the molecular outflow.
Erratum (PASJ 63, June issue) was reflected
References in corpus (4)
Cited by in corpus (22)
- Misalignment of Magnetic Fields and Outflows in Protostellar Cores
- The evidence of radio polarization induced by the radiative grain alignment and self-scattering of dust grains in a protoplanetary disk
- Self-similar Fragmentation Regulated by Magnetic Fields in a Massive Star Forming Filament
- Dust Polarization Toward Embedded Protostars in Ophiuchus with ALMA. I. VLA 1623
- Dust Polarization Toward Embedded Protostars in Ophiuchus with ALMA. III. Survey Overview
- Exploring Magnetic Field Structure in Star-Forming Cores with Polarization of Thermal Dust Emission
- Dust Polarization Toward Embedded Protostars in Ophiuchus with ALMA. II. IRAS 16293-2422
- Synthetic Observations of Magnetic Fields in Protostellar Cores
- ALMA High Angular Resolution Polarization Study; An Extremely Young Class 0 Source, OMC-3/MMS 6
- A Pseudodisk Threaded with a Toroidal and Pinched Poloidal Magnetic Field Morphology in the HH 211 Protostellar System
- The origin of dust polarization in molecular outflows
- Magnetic Field Structure in Spheroidal Star-Forming Clouds
- Distortion of Magnetic Fields in a Starless Core II: 3D Magnetic Field Structure of FeSt 1-457
- Mid-Infrared Polarization of Herbig Ae/Be Discs
- Magnetic Field Structure in Spheroidal Star-Forming Clouds. II. Estimating Field Structure from Observed Maps
- Observational Identification of First Cores: Non-LTE Radiative Transfer Simulation
- Magnetic Field in The Isolated Massive Dense Clump IRAS 20126+4104
- SOFIA and ALMA Investigate Magnetic Fields and Gas Structures in Massive Star Formation: The Case of the Masquerading Monster in BYF 73
- Twisted magnetic field in star formation processes of L1521 F revealed by submillimeter dual band polarimetry using James Clerk Maxwell Telescope
- Hourglass Magnetic Field of a Protostellar System
- Hourglass Magnetic Field from a Survey of Current Density Profiles
- Synthetic Polarization Maps of an Outflow Zone from Magnetohydrodynamic Simulations