Present bounds on the relativistic energy density in the Universe from cosmological observables

被引:41
|
作者
Mangano, Gianpiero
Melchiorri, Alessandro
Mena, Olga
Miele, Gennaro
Slosar, Anze
机构
[1] Univ Naples Federico II, Dept Phys, I-80126 Naples, Italy
[2] Univ Naples Federico II, Sez INFN, I-80126 Naples, Italy
[3] Univ Roma La Sapienza, Dept Phys, I-00185 Rome, Italy
[4] Univ Roma La Sapienza, Sez INFN, I-00185 Rome, Italy
[5] Univ Oxford, Oxford OX3 RH1, England
关键词
CMBR experiments; cosmological neutrinos; big bang nucleosynthesis;
D O I
10.1088/1475-7516/2007/03/006
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We discuss the present bounds on the relativistic energy density in the Universe parametrized in terms of the effective number of neutrinos N-v(eff) using the most recent cosmological data on cosmic microwave background (CMB) temperature anisotropies and polarization, large scale galaxy clustering from the Sloan Digital Sky Survey (SDSS) and 2dF, luminosity distances of type Ia supernovae, Lyman-alpha absorption clouds (Ly-alpha), the baryonic acoustic oscillations (BAO) detected in the luminous red galaxies of the SDSS and, finally, big bang nucleosynthesis (BBN) predictions for He-4 and deuterium abundances. We find N-v(eff) = 5.2(-2.2)(+2.7) from CMB and large scale structure data, while adding Ly-alpha and BAO we obtain Ne-v(eff) = 4.6(-1.5)(+1.6) at 95% c. l. These results show some tension with the standard value N-v(eff) = 3.046 as well as with the BBN range N-v(eff) = 3.1(-1.2)(+1.4) at 95% c. l., though the discrepancy is slightly below the 2-s level. In general, considering a smaller set of data weakens the constraints on N-v(eff). We emphasize the impact of an improved upper limit (or measurement) of the primordial value of He-3 abundance in clarifying the issue of whether the value of N(v)(ef)f at early (BBN) and more recent epochs coincide.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] Cosmological magnetic field: A fossil of density perturbations in the early universe
    Ichiki, K
    Takahashi, K
    Ohno, H
    Hanayama, H
    Sugiyama, N
    SCIENCE, 2006, 311 (5762) : 827 - 829
  • [33] Evolution of the luminosity density in the universe: Implications for the nonzero cosmological constant
    Totani, T
    Yoshii, Y
    Sato, K
    ASTROPHYSICAL JOURNAL, 1997, 483 (02): : L75 - L78
  • [34] Effects of inhomogeneities on apparent cosmological observables: "fake" evolving dark energy
    Romano, Antonio Enea
    Starobinsky, Alexei A.
    Sasaki, Misao
    EUROPEAN PHYSICAL JOURNAL C, 2012, 72 (12): : 1 - 14
  • [35] Effects of inhomogeneities on apparent cosmological observables: “fake” evolving dark energy
    Antonio Enea Romano
    Alexei A. Starobinsky
    Misao Sasaki
    The European Physical Journal C, 2012, 72
  • [36] Relativistic weak lensing from a fully non-linear cosmological density field
    Thomas, D. B.
    Bruni, M.
    Wands, D.
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2015, (09):
  • [37] Cosmological parameters from complementary observations of the Universe
    Durrer, R
    Novosyadlyj, B
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2001, 324 (03) : 560 - 572
  • [38] Cosmological cancellation of the vacuum energy density
    Brax, Philippe
    Valageas, Patrick
    PHYSICAL REVIEW D, 2019, 99 (12)
  • [39] Entropy in the Present and Early Universe and Vacuum Energy
    Shalyt-Margolin, A. E.
    SUN, THE STARS, THE UNIVERSE, AND GENERAL RELATIVITY, 2010, 1205 : 160 - 167
  • [40] Formation of cosmological mass condensation within a FRW universe: Exact general relativistic solutions
    Khakshournia, S
    Mansouri, R
    PHYSICAL REVIEW D, 2002, 65 (02):