Data

Parkes observations for project P1017 semester 2019APRS

Commonwealth Scientific and Industrial Research Organisation
Anderson, Craig ; Mcclure-Griffiths, Naomi ; Carretti, Ettore ; Leahy, J Patrick ; O'Sullivan, Shane ; Kaczmarek, Jane ; Heald, George ; Sobey, Charlotte
Viewed: [[ro.stat.viewed]] Cited: [[ro.stat.cited]] Accessed: [[ro.stat.accessed]]
ctx_ver=Z39.88-2004&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Adc&rfr_id=info%3Asid%2FANDS&rft_id=https://data.csiro.au/collection/csiro:CASDA-ATOA-P1017-2019APRS?tab=data DataDownload&rft.title=Parkes observations for project P1017 semester 2019APRS&rft.identifier=http://hdl.handle.net/102.100.100/707148?index=1&rft.publisher=Commonwealth Scientific and Industrial Research Organisation&rft.description=Supermassive black holes transfer material and energy to their environments through radio lobes, driving the evolution and ecology of the universe. Underpinning these processes are fundamental questions about the prevalence and distribution of magnetised thermal plasma in these systems, which encodes the lobes’ history of interaction with the environment and the physical processes occurring within. Unfortunately however, our capacity to study these processes observationally has lagged far behind simulations and theory, which have driven our understanding of radio lobes in recent years.\r\rThe situation is typified by Centaurus A, which despite being our nearest and prototypical FR-I radio galaxy, is still poorly understood. For example, we still don't know why the radio emission from the lobes is filamentary, why the radio morphology of the northern and southern lobe complexes differ so markedly, how synchrotron-emitting and thermal plasma is distributed throughout the lobes, or how energy flows from the central AGN through the lobes to the external environment. \r\rHowever, the observational status quo has recently been upended by the development of broadband receivers and back ends in radio telescopes. These enable broadband spectral index and Faraday rotation studies, which can extract rich information about the structure and dynamics of radio lobes, and the physical processes occurring therein. We propose to use the revolutionary capabilities of the UWL receiver on Parkes to observe Centaurus A over a broad 0.7--3.3 GHz band in full polarization. Coupled with modern analysis techniques, we will address the questions posed above.&rft.creator=Anderson, Craig &rft.creator=Mcclure-Griffiths, Naomi &rft.creator=Carretti, Ettore &rft.creator=Leahy, J Patrick &rft.creator=O'Sullivan, Shane &rft.creator=Kaczmarek, Jane &rft.creator=Heald, George &rft.creator=Sobey, Charlotte &rft.date=2025&rft.edition=v1&rft_rights=Creative Commons Attribution 4.0 International Licence https://creativecommons.org/licenses/by/4.0/&rft_rights=Data is accessible online and may be reused in accordance with licence conditions&rft_rights=All Rights (including copyright) CSIRO 2025.&rft_subject=magnetic fields&rft_subject=AGN&rft_subject=Astronomical sciences not elsewhere classified&rft_subject=Astronomical sciences&rft_subject=PHYSICAL SCIENCES&rft.type=dataset&rft.language=English Access the data

Licence & Rights:

Open Licence view details
CC-BY

Creative Commons Attribution 4.0 International Licence
https://creativecommons.org/licenses/by/4.0/

Data is accessible online and may be reused in accordance with licence conditions

All Rights (including copyright) CSIRO 2025.

Access:

Open view details

Accessible for free

Contact Information



Full description

Supermassive black holes transfer material and energy to their environments through radio lobes, driving the evolution and ecology of the universe. Underpinning these processes are fundamental questions about the prevalence and distribution of magnetised thermal plasma in these systems, which encodes the lobes’ history of interaction with the environment and the physical processes occurring within. Unfortunately however, our capacity to study these processes observationally has lagged far behind simulations and theory, which have driven our understanding of radio lobes in recent years.\r
\r
The situation is typified by Centaurus A, which despite being our nearest and prototypical FR-I radio galaxy, is still poorly understood. For example, we still don't know why the radio emission from the lobes is filamentary, why the radio morphology of the northern and southern lobe complexes differ so markedly, how synchrotron-emitting and thermal plasma is distributed throughout the lobes, or how energy flows from the central AGN through the lobes to the external environment. \r
\r
However, the observational status quo has recently been upended by the development of broadband receivers and back ends in radio telescopes. These enable broadband spectral index and Faraday rotation studies, which can extract rich information about the structure and dynamics of radio lobes, and the physical processes occurring therein. We propose to use the revolutionary capabilities of the UWL receiver on Parkes to observe Centaurus A over a broad 0.7--3.3 GHz band in full polarization. Coupled with modern analysis techniques, we will address the questions posed above.

Available: 2025-07-18

Data time period: 2019-04-01 to 2019-09-30

This dataset is part of a larger collection

Click to explore relationships graph
Subjects

User Contributed Tags    

Login to tag this record with meaningful keywords to make it easier to discover

ACN 633 798 857