CORE
CO
nnecting
RE
positories
Services
Services overview
Explore all CORE services
Access to raw data
API
Dataset
FastSync
Content discovery
Recommender
Discovery
OAI identifiers
OAI Resolver
Managing content
Dashboard
Bespoke contracts
Consultancy services
Support us
Support us
Membership
Sponsorship
Research partnership
About
About
About us
Our mission
Team
Blog
FAQs
Contact us
Community governance
Governance
Advisory Board
Board of supporters
Research network
Innovations
Our research
Labs
research
Calibration and Stokes Imaging with Full Embedded Element Primary Beam Model for the Murchison Widefield Array
Authors
M. E. Bell
J. R. Callingham
+23 more
T. Colegate
K. S. Dwarakanath
Bi-Qing For
B. M. Gaensler
P. J. Hancock
L. Hindson
N. Hurley-Walker
M. Johnston-Hollitt
A. D. Kapińska
David L. Kaplan
E. Lenc
B. McKinley
J. Morgan
A. R. Offringa
B. Pindor
P. Procopio
M. Sokolowski
L. Staveley-Smith
A. T. Sutinjo
D. Ung
R. B. Wayth
C. Wu
Q. Zheng
Publication date
1 January 2017
Publisher
'Cambridge University Press (CUP)'
Doi
View
on
arXiv
Abstract
15 pages, 11 figures. Accepted for publication in PASA. © Astronomical Society of Australia 2017The Murchison Widefield Array (MWA), located in Western Australia, is one of the low-frequency precursors of the international Square Kilometre Array (SKA) project. In addition to pursuing its own ambitious science program, it is also a testbed for wide range of future SKA activities ranging from hardware, software to data analysis. The key science programs for the MWA and SKA require very high dynamic ranges, which challenges calibration and imaging systems. Correct calibration of the instrument and accurate measurements of source flux densities and polarisations require precise characterisation of the telescope's primary beam. Recent results from the MWA GaLactic Extragalactic All-sky MWA (GLEAM) survey show that the previously implemented Average Embedded Element (AEE) model still leaves residual polarisations errors of up to 10-20 % in Stokes Q. We present a new simulation-based Full Embedded Element (FEE) model which is the most rigorous realisation yet of the MWA's primary beam model. It enables efficient calculation of the MWA beam response in arbitrary directions without necessity of spatial interpolation. In the new model, every dipole in the MWA tile (4 x 4 bow-tie dipoles) is simulated separately, taking into account all mutual coupling, ground screen and soil effects, and therefore accounts for the different properties of the individual dipoles within a tile. We have applied the FEE beam model to GLEAM observations at 200 - 231 MHz and used false Stokes parameter leakage as a metric to compare the models. We have determined that the FEE model reduced the magnitude and declination-dependent behaviour of false polarisation in Stokes Q and V while retaining low levels of false polarisation in Stokes U.Peer reviewedFinal Accepted Versio
Similar works
Full text
Open in the Core reader
Download PDF
Available Versions
espace@Curtin
See this paper in CORE
Go to the repository landing page
Download from data provider
oai:espace.curtin.edu.au:20.50...
Last time updated on 18/04/2019
University of Hertfordshire Research Archive
See this paper in CORE
Go to the repository landing page
Download from data provider
oai:uhra.herts.ac.uk:6690
Last time updated on 02/07/2025
OPUS - University of Technology Sydney
See this paper in CORE
Go to the repository landing page
Download from data provider
oai:opus.lib.uts.edu.au:10453/...
Last time updated on 18/10/2019
Crossref
See this paper in CORE
Go to the repository landing page
Download from data provider
info:doi/10.1017%2Fpasa.2017.5...
Last time updated on 02/01/2020