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arXiv · astro-ph/9308029

Omega from Velocities in Voids

Abstract

We propose a method for deriving a dynamical lower bound on $Ω$ from diverging flows in low-density regions, based on the fact that large outflows are not expected in a low-$Ω$ universe. The velocities are assumed to be induced by gravity from small initial fluctuations, but no assumptions are made regarding their exact Gaussian nature, galaxy biasing, or $Λ$. The derivatives of a diverging velocity field infer a nonlinear approximation to the mass density, which is an overestimate when the true value of $Ω$ is assumed. This inferred density can become ridiculously negative when the assumed $Ω$ is too low, thus bounding $Ω$. Observed radial peculiar velocities of galaxies allow the \pot\ procedure to recover the required velocity field, Gaussian smoothed at $1200\kms$. The density and the associated errors are then inferred for different values of $Ω$, searching for a void which shows negative inferred density with high confidence. A preliminary application to data in a southern void indicates that $Ω\leq 0.3$ can be ruled out at the $2.4$-sigma level. A detailed study of possible systematic errors is under way.

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BibTeXRIS

Avishai Dekel, Martin Rees. 1993-08-23. Omega from Velocities in Voids. https://doi.org/10.1086/187197

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