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The radial acceleration relation is a natural consequence of the baryonic Tully-Fisher relation

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arxiv 1803.01849 v1 pith:KN2SVV2T submitted 2018-03-05 astro-ph.GA

classification astro-ph.GA
keywords accelerationrelationbaryonicbtfrgalaxybreakcurvesdark
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abstract

Galaxies covering several orders of magnitude in stellar mass and a variety of Hubble types have been shown to follow the "Radial Acceleration Relation" (RAR), a relationship between $g_{\rm obs}$, the observed circular acceleration of the galaxy, and $g_{\rm bar}$, the acceleration due to the total baryonic mass of the galaxy. For accelerations above $10^{10}~{\rm m \, s}^{-2}$, $g_{\rm obs}$ traces $g_{\rm bar}$, asymptoting to the 1:1 line. Below this scale, there is a break in the relation such that $\rm g_{\rm obs} \sim g_{\rm bar}^{1/2}$. We show that the RAR slope, scatter and the acceleration scale are all natural consequences of the well-known baryonic Tully-Fisher relation (BTFR). We further demonstrate that galaxies with a variety of baryonic and dark matter (DM) profiles and a wide range of dark halo and galaxy properties (well beyond those expected in CDM) lie on the RAR if we simply require that their rotation curves satisfy the BTFR. We explore conditions needed to break this degeneracy: sub-kpc resolved rotation curves inside of "cored" DM-dominated profiles and/or outside $\gg 100\,$kpc could lie on BTFR but deviate in the RAR, providing new constraints on DM.

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  1. The Intrinsic Scatter of the Radial Acceleration Relation

    astro-ph.GA 2019-08 conditional novelty 6.0 of 10

    The intrinsic scatter of the stellar radial acceleration relation is about 0.11 dex, in agreement with LCDM predictions and larger than the earlier null estimate.

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