Swinburne
Browse

The high time resolution universe pulsar survey - XII. Galactic plane acceleration search and the discovery of 60 pulsars

Download (5.65 MB)
journal contribution
posted on 2024-08-06, 09:49 authored by C. Ng, D. J. Champion, Matthew BailesMatthew Bailes, Ewan Barr, S. D. Bates, N. D. R. Bhat, M. Burgay, S. Burke-Spolaor, Christopher FlynnChristopher Flynn, A. Jameson, S. Johnston, M. J. Keith, M. Kramer, L. Levin, E. Petroff, A. Possenti, B. W. Stappers, Willem van Straten, C. Tiburzi, R. P. Eatough, A. G. Lyne
We present initial results from the low-latitude Galactic plane region of the High Time Resolution Universe pulsar survey conducted at the Parkes 64-m radio telescope. We discuss the computational challenges arising from the processing of the terabyte-sized survey data. Two new radio interference mitigation techniques are introduced, as well as a partially-coherent segmented acceleration search algorithm which aims to increase our chances of discovering highly-relativistic short-orbit binary systems, covering a parameter space including potential pulsar-black hole binaries. We show that under a constant acceleration approximation, a ratio of data length over orbital period of ~0.1 results in the highest effectiveness for this search algorithm. From the 50 per cent of data processed thus far, we have re-detected 435 previously known pulsars and discovered a further 60 pulsars, two of which are fast-spinning pulsars with periods less than 30ms. PSR J1101-6424 is a millisecond pulsar whose heavy white dwarf (WD) companion and short spin period of 5.1ms indicate a rare example of full-recycling via Case A Roche lobe overflow. PSR J1757-27 appears to be an isolated recycled pulsar with a relatively long spin period of 17ms. In addition, PSR J1244-6359 is a mildly-recycled binary system with a heavy WD companion, PSR J1755-25 has a significant orbital eccentricity of 0.09, and PSR J1759-24 is likely to be a long-orbit eclipsing binary with orbital period of the order of tens of years. Comparison of our newly-discovered pulsar sample to the known population suggests that they belong to an older population. Furthermore, we demonstrate that our current pulsar detection yield is as expected from population synthesis.

Funding

Australian Research Council

Directorate for Mathematical & Physical Sciences

Commonwealth Scientific and Industrial Research Organisation

National Computational Infrastructure

Science and Technology Facilities Council

History

Available versions

PDF (Published version)

ISSN

1365-2966

Journal title

Monthly Notices of the Royal Astronomical Society

Volume

450

Issue

3

Pagination

25 pp

Publisher

Oxford University Press

Copyright statement

Copyright © 2015. This article has been accepted for publication in the Monthly Notices of the Royal Astronomical Society ©: 2015 The authors. Published by Oxford University Press on behalf of the Royal Astronomical Society.

Language

eng

Usage metrics

    Publications

    Categories

    No categories selected

    Keywords

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC