Galactic interstellar turbulence in the southern sky seen through spatial gradients of the polarization vector
arXiv:1404.6077 · doi:10.1051/0004-6361/201322982
Abstract
Radio synchrotron polarization maps of the Galaxy can be used to infer the properties of interstellar turbulence in the diffuse warm ionized medium (WIM). In this paper, we investigate the spatial gradient of linearly polarized synchrotron emission () as a tracer of turbulence, the relationship of the gradient to the sonic Mach number of the WIM, and changes in morphology of the gradient as a function of Galactic position in the southern sky. We use data from the S-band Polarization All Sky Survey (S-PASS) to image the spatial gradient of the linearly polarized synchrotron emission () of the entire southern sky at ~GHz. The spatial gradient of linear polarization reveals rapid changes of the density and magnetic fluctuations in the WIM due to magnetic turbulence as a function of Galactic position; we make comparisons of these data to ideal MHD numerical simulations. In order to constrain the sonic Mach number (), we apply a high order moments analysis to the observations and to the simulated diffuse, isothermal ISM with ideal magneto-hydrodynamic turbulence. We find that polarization gradient maps reveal elongated structures, which we associate with turbulence in the ISM. Our analysis corroborates the view of a turbulent WIM in a transonic regime . Filamentary structures with typical widths down to the angular resolution are seen and the observed morphologies match closely with numerical simulations and in some cases H contours. The intensity is found to be approximately log-normal distributed. No systematic variations of the sonic Mach number are observed as a function of Galactic coordinates, which is consistent with turbulence in the WIM inferred by the analysis of H data.
accepted for publication on A&A 13 pages, 10 figures
References in corpus (12)
- Theory of Star Formation
- Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Data Processing, Sky Maps, and Basic Results
- The ATNF Pulsar Catalogue
- The Vertical Structure of Warm Ionised Gas in the Milky Way
- Density Fluctuations in MHD Turbulence: Spectra, Intermittency and Topology
- The outer scale of turbulence in the magneto-ionized Galactic interstellar medium
- Giant Magnetized Outflows from the Centre of the Milky Way
- Vertical structure of a supernova-driven turbulent magnetized ISM
- A New Model For The Loop-I (The North Polar Spur) Region
- The Turbulent Warm Ionized Medium: Emission Measure Distribution and MHD Simulations
- On the linear term correction for needlets/wavelets non-Gaussianity estimators
- PGMS: to study the Galactic magnetism out of the Galactic plane
Cited by in corpus (15)
- Planck intermediate results. XIX. An overview of the polarized thermal emission from Galactic dust
- Low frequency observations of linearly polarized structures in the interstellar medium near the south Galactic pole
- A radio-polarisation and rotation measure study of the Gum Nebula and its environment
- The Galactic Magneto-Ionic Medium Survey: Moments of the Faraday Spectra
- TurbuStat: Turbulence Statistics in Python
- Cosmic Magnetism in Centimeter and Meter Wavelength Radio Astronomy
- Through thick or thin: Multiple components of the magneto-ionic medium towards the nearby region Sharpless 2-27 revealed by Faraday tomography
- The multiphase and magnetized neutral hydrogen seen by LOFAR
- Tracing Magnetic Field with Synchrotron Polarization Gradients: Parameter Study
- Advanced Diagnostics for the Study of Linearly Polarized Emission. I: Derivation
- A Comparison of Multi-Phase Magnetic Field Tracers in a High-Galactic Latitude Region of the Filamentary Interstellar Medium
- QUIJOTE scientific results -- VI. The Haze as seen by QUIJOTE
- Polarization Gradient Study of Interstellar Medium Turbulence Using The Canadian Galactic Plane Survey
- Distant probes of RM structure -- Where is the Faraday Rotation towards the Magellanic Leading Arm?
- Synthesizing Observations and Theory to Understand Galactic Magnetic Fields: Progress and Challenges