106 research outputs found
Rotation Measure Synthesis of Galactic Polarized Emission with the DRAO 26-m Telescope
Radio polarimetry at decimetre wavelengths is the principal source of
information on the Galactic magnetic field. The diffuse polarized emission is
strongly influenced by Faraday rotation in the magneto-ionic medium and
rotation measure is the prime quantity of interest, implying that all Stokes
parameters must be measured over wide frequency bands with many frequency
channels. The DRAO 26-m Telescope has been equipped with a wideband feed, a
polarization transducer to deliver both hands of circular polarization, and a
receiver, all operating from 1277 to 1762 MHz. Half-power beamwidth is between
40 and 30 arcminutes. A digital FPGA spectrometer, based on commercially
available components, produces all Stokes parameters in 2048 frequency channels
over a 485-MHz bandwidth. Signals are digitized to 8 bits and a Fast Fourier
Transform is applied to each data stream. Stokes parameters are then generated
in each frequency channel. This instrument is in use at DRAO for a Northern sky
polarization survey. Observations consist of scans up and down the Meridian at
a drive rate of 0.9 degree per minute to give complete coverage of the sky
between declinations -30 degree and 90 degree. This paper presents a complete
description of the receiver and data acquisition system. Only a small fraction
of the frequency band of operation is allocated for radio astronomy, and about
20 percent of the data are lost to interference. The first 8 percent of data
from the survey are used for a proof-of-concept study, which has led to the
first application of Rotation Measure Synthesis to the diffuse Galactic
emission obtained with a single-antenna telescope. We find rotation measure
values for the diffuse emission as high as approximately 100 rad per square
metre, much higher than recorded in earlier work.Comment: Accepted for publication in The Astronomical Journa
The magnetic field of the Large Magellanic Cloud revealed through Faraday rotation
We have measured the Faraday rotation toward a large sample of polarized
radio sources behind the Large Magellanic Cloud (LMC), to determine the
structure of this galaxy's magnetic field. The magnetic field of the LMC
consists of a coherent axisymmetric spiral of field strength ~1 microgauss.
Strong fluctuations in the magnetic field are also seen, on small (<0.5
parsecs) and large (~100 parsecs) scales. The significant bursts of recent star
formation and supernova activity in the LMC argue against standard dynamo
theory, adding to the growing evidence for rapid field amplification in
galaxies.Comment: 15 pages, including 3 embedded EPS figures (1 color, 2 b/w) plus
supporting on-line material; uses scicite.sty. To appear in Science, vol 307,
number 5715 (11 March 2005
The Global Magneto-Ionic Medium Survey: Polarimetry of the Southern Sky from 300 to 480 MHz
Much data on the Galactic polarized radio emission has been gathered in the
last five decades. All-sky surveys have been made, but only in narrow, widely
spaced frequency bands, and the data are inadequate for the characterization of
Faraday rotation, the main determinant of the appearance of the polarized radio
sky at decimetre wavelengths. We describe a survey of the polarized radio
emission from the Southern sky, aiming to characterize the magneto-ionic
medium, particularly the strength and configuration of the magnetic field. This
work is part of the Global Magneto-Ionic Medium Survey (GMIMS). We have
designed and built a feed and receiver covering the band 300 to 900 MHz for the
CSIRO Parkes 64-m Telescope. We have surveyed the entire sky between
declinations -90 and +20 degrees. We present data covering 300 to 480 MHz with
angular resolution 81' to 45'. The survey intensity scale is absolutely
calibrated, based on measurements of resistors at known temperatures and on an
assumed flux density and spectral index for Taurus A. Data are presented as
brightness temperatures. We have applied Rotation Measure Synthesis to the data
to obtain a Faraday depth cube of resolution 5.9 radians per metre squared,
sensitivity of 60 mK of polarized intensity, and angular resolution 1.35
degrees. The data presented in this paper are available at the Canadian
Astronomy Data Centre.Comment: Accepted for publication in the Astronomical Journal Modified 29th
June 2019 to replace outdated doi: for access to dat
GMIMS: The Global Magneto-Ionic Medium Survey
The Global Magneto-Ionic Medium Survey (GMIMS) is a project to map the
diffuse polarized emission over the entire sky, Northern and Southern
hemispheres, from 300 MHz to 1.8 GHz. With an angular resolution of 30 - 60
arcmin and a frequency resolution of 1 MHz or better, GMIMS will provide the
first spectro-polarimetric data set of the large-scale polarized emission over
the entire sky, observed with single-dish telescopes. GMIMS will provide an
invaluable resource for studies of the magneto-ionic medium of the Galaxy in
the local disk, halo, and its transition.Comment: To appear in Cosmic Magnetic Fields: From Planets, to Stars and
Galaxies, eds. K.G. Strassmeier, A.G. Kosovichev & J.E. Beckma
Faraday Tomography of the North Polar Spur: Constraints on the distance to the Spur and on the Magnetic Field of the Galaxy
We present radio continuum and polarization images of the North Polar Spur
(NPS) from the Global Magneto-Ionic Medium Survey (GMIMS) conducted with the
Dominion Radio Astrophysical Observatory 26-m Telescope. We fit polarization
angle versus wavelength squared over 2048 frequency channels from 1280 to 1750
MHz to obtain a Faraday Rotation Measure (RM) map of the NPS. Combining this RM
map with a published Faraday depth map of the entire Galaxy in this direction,
we derive the Faraday depth introduced by the NPS and the Galactic interstellar
medium (ISM) in front of and behind the NPS. The Faraday depth contributed by
the NPS is close to zero, indicating that the NPS is an emitting only feature.
The Faraday depth caused by the ISM in front of the NPS is consistent with zero
at b>50 degree, implying that this part of the NPS is local at a distance of
approximately several hundred parsecs. The Faraday depth contributed by the ISM
behind the NPS gradually increases with Galactic latitude up to b=44 degree,
and decreases at higher Galactic latitudes. This implies that either the part
of the NPS at b<44 degree is distant or the NPS is local but there is a sign
change of the large-scale magnetic field. If the NPS is local, there is then no
evidence for a large-scale anti-symmetry pattern in the Faraday depth of the
Milky Way. The Faraday depth introduced by the ISM behind the NPS at latitudes
b>50 degree can be explained by including a coherent vertical magnetic field.Comment: 9 pages, 8 figures, accepted for publication in ApJ. Some figures
have been degraded to reduce sizes, for a high resolution version, see
http://physics.usyd.edu.au/~xhsun/ms_nps.pd
Deriving global structure of the Galactic Magnetic Field from Faraday Rotation Measures of extragalactic sources
We made use of the two latest sets of Rotational Measures (RMs) of
extra-galactic radio sources, namely the NRAO VLA Sky Survey otation Measures
Catalogue, and a compilation by Kronberg&Newton-McGee(2011), to infer the
global structure of the Galactic Magnetic Field (GMF). We have checked that
these two data sets are consistent with each other. Motivated by clear patterns
in the observed distribution of RMs over the sky, we considered GMF models
consisting of the two components: disk (spiral or ring) and halo. The
parameters of these components were determined by fitting different model field
geometries to the observed RMs. We found that the model consisting of a
symmetric (with respect to the Galactic plane) spiral disk and anti-symmetric
halo fits the data best, and reproduces the observed distribution of RMs over
the sky very well. We confirm that ring disk models are disfavored. Our results
favor small pitch angles around -5 degrees and an increased vertical scale of
electron distribution, in agreement with some previous studies. Based on our
fits, we identify two benchmark models suitable for studies of cosmic ray
propagation, including the ultra-high energies.Comment: 15 pages, 14 figures, 4 tables misprints corrected, presentation
improved generally matches the published versio
Joint 3D modelling of the polarized Galactic synchrotron and thermal dust foreground diffuse emission
We present for the first time a coherent model of the polarized Galactic
synchrotron and thermal dust emissions which are the main diffuse foreground
for the measurement of the polarized power spectra of the CMB fluctuations with
the Planck satellite mission. We produce 3D models of the Galactic magnetic
field including regular and turbulent components, and of the distribution of
matter in the Galaxy, relativistic electrons and dust grains. By integrating
along the line of sight we construct maps of the polarized Galactic synchrotron
and thermal dust emission for each of these models and compare them to
currently available data. We consider the 408 MHz all-sky continuum survey, the
23 GHz band of the Wilkinson Microwave Anisotropy Probe and the 353 GHz
Archeops data.}{The best-fit parameters obtained are consistent with previous
estimates in the literature based only on synchrotron emission and pulsar
rotation measurements. They allows us to reproduce the large scale structures
observed on the data. Poorly understood local Galactic structures and
turbulence make difficult an accurate reconstruction of the observations in the
Galactic plane. Finally, using the best-fit model we are able to estimate the
expected polarized foreground contamination at the Planck frequency bands. For
the CMB bands, 70, 100, 143 and 217 GHz, at high Galactic latitudes although
the CMB signal dominates in general, a significant foreground contribution is
expected at large angular scales. In particular, this contribution will
dominate the CMB signal for the B modes expected from realistic models of a
background of primordial gravitational waves
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