Constraints on UHECR Sources and Extragalactic Magnetic Fields from Directional Anisotropies

被引:6
作者
Bister, Teresa [1 ,2 ]
Farrar, Glennys R. [3 ]
机构
[1] Radboud Univ Nijmegen, Inst Math Astrophys & Particle Phys, Nijmegen, Netherlands
[2] Natl Inst Kernfys Hoge Energie Fys NIKHEF, SciPk, Amsterdam, Netherlands
[3] NYU, Ctr Cosmol & Particle Phys, New York, NY 10003 USA
基金
美国国家科学基金会;
关键词
LARGE-SCALE ANISOTROPIES; ENERGY COSMIC-RAYS; LUMINOSITY FUNCTION; EVOLUTION; AGN; PROPAGATION; DISRUPTION; GALAXIES; SEARCHES; MODEL;
D O I
10.3847/1538-4357/ad2f3f
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
A dipole anisotropy in ultra-high-energy cosmic ray (UHECR) arrival directions, of extragalactic origin, is now firmly established at energies E > 8 EeV. Furthermore, the UHECR angular power spectrum shows no power at smaller angular scales than the dipole, apart from hints of possible individual hot or warm spots for energy thresholds greater than or similar to 40 EeV. Here we exploit the magnitude of the dipole and the limits on smaller-scale anisotropies to place constraints on two quantities: the extragalactic magnetic field (EGMF) and the number density of UHECR sources or the volumetric event rate if UHECR sources are transient. We also vary the bias between the extragalactic matter and the UHECR source densities, reflecting whether UHECR sources are preferentially found in over- or underdense regions, and find that little or no bias is favored. We follow Ding et al. (2021) in using the CosmicFlows-2 density distribution of the local universe as our baseline distribution of UHECR sources, but we improve and extend that work by employing an accurate and self-consistent treatment of interactions and energy losses during propagation. Deflections in the Galactic magnetic field are treated using either the full JF12 magnetic field model, with both random and coherent components, or just the coherent part, to bracket the impact of the GMF on the dipole anisotropy. This large-scale structure model gives good agreement with both the direction and magnitude of the measured dipole anisotropy and forms the basis for simulations of discrete sources and the inclusion of EGMF effects.
引用
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页数:20
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共 83 条
  • [31] Farrar G. R., 2014, ARXIV
  • [32] The Galactic magnetic field and ultrahigh-energy cosmic ray deflections
    Farrar, Glennys R.
    [J]. COMPTES RENDUS PHYSIQUE, 2014, 15 (04) : 339 - 348
  • [33] GIANT AGN FLARES AND COSMIC RAY BURSTS
    Farrar, Glennys R.
    Gruzinov, Andrei
    [J]. ASTROPHYSICAL JOURNAL, 2009, 693 (01) : 329 - 332
  • [34] Semi-analytic modelling of the extragalactic background light and consequences for extragalactic gamma-ray spectra
    Gilmore, Rudy C.
    Somerville, Rachel S.
    Primack, Joel R.
    Dominguez, Alberto
    [J]. MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2012, 422 (04) : 3189 - 3207
  • [35] Cosmic ray anisotropy from large-scale structure and the effect of magnetic horizons
    Globus, N.
    Piran, T.
    Hoffman, Y.
    Carlesi, E.
    Pomarede, D.
    [J]. MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2019, 484 (03) : 4167 - 4173
  • [36] The Extragalactic Ultra-high-energy Cosmic-Ray Dipole
    Globus, Noemie
    Piran, Tsvi
    [J]. ASTROPHYSICAL JOURNAL LETTERS, 2017, 850 (02)
  • [37] Glombitza J. for the Pierre Auger Collaboration, 2023, ICRC (Nagoya), V444, P278, DOI [10.22323/1.444.0278, DOI 10.22323/1.444.0278]
  • [38] Golup G. for the Pierre Auger Collaboration, 2023, ICRC (Nagoya), V444, P252, DOI [10.22323/1.444.0252, DOI 10.22323/1.444.0252]
  • [39] Gonzales J.M. for the Pierre Auger Collaboration, 2023, ICRC (Nagoya), V444, P288, DOI [10.22323/1.444.0288, DOI 10.22323/1.444.0288]
  • [40] The Herschel* PEP/HerMES luminosity function - I. Probing the evolution of PACS selected Galaxies to z ≃ 4
    Gruppioni, C.
    Pozzi, F.
    Rodighiero, G.
    Delvecchio, I.
    Berta, S.
    Pozzetti, L.
    Zamorani, G.
    Andreani, P.
    Cimatti, A.
    Ilbert, O.
    Le Floc'h, E.
    Lutz, D.
    Magnelli, B.
    Marchetti, L.
    Monaco, P.
    Nordon, R.
    Oliver, S.
    Popesso, P.
    Riguccini, L.
    Roseboom, I.
    Rosario, D. J.
    Sargent, M.
    Vaccari, M.
    Altieri, B.
    Aussel, H.
    Bongiovanni, A.
    Cepa, J.
    Daddi, E.
    Dominguez-Sanchez, H.
    Elbaz, D.
    Schreiber, N. Foerster
    Genzel, R.
    Iribarrem, A.
    Magliocchetti, M.
    Maiolino, R.
    Poglitsch, A.
    Perez Garcia, A.
    Sanchez-Portal, M.
    Sturm, E.
    Tacconi, L.
    Valtchanov, I.
    Amblard, A.
    Arumugam, V.
    Bethermin, M.
    Bock, J.
    Boselli, A.
    Buat, V.
    Burgarella, D.
    Castro-Rodriguez, N.
    Cava, A.
    [J]. MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2013, 432 (01) : 23 - 52