Anisotropic q-Gaussian velocity distributions in LambdaCDM halos
arXiv:1310.6756 · doi:10.1093/mnras/stv1321
Abstract
The velocity distribution function (VDF) of dark matter (DM) halos in CDM dissipationless cosmological simulations, which must be non-separable in its radial and tangential components, is still poorly known. We present the first single-parameter, non-separable, anisotropic model for the VDF in CDM halos, built from an isotropic -Gaussian (Tsallis) VDF of the isotropic set of dimensionless spherical velocity components (after subtraction of streaming motions), normalized by the respective velocity dispersions. We test our VDF on 90 cluster-mass halos of a dissipationless cosmological simulation. Beyond the virial radius, , our model VDF adequately reproduces that measured in the simulated halos, but no -Gaussian model can adequately represent the VDF within , as the speed distribution function is then flatter-topped than any -Gaussian can allow. Nevertheless, our VDF fits significantly better the simulations than the commonly used Maxwellian (Gaussian) distribution, at virtually all radii within . Within 0.4 (1) , the non-Gaussianity index is (roughly) linearly related to the slope of the density profile and also to the velocity anisotropy profile. We provide a parametrization of the modulation of with radius for both the median fits and the fit of the stacked halo. At radii of a few percent of , corresponding to the Solar position in the Milky Way, our best-fit VDF, although fitting better the simulations than the Gaussian one, overproduces significantly the fraction of high velocity objects, indicating that one should not blindly use these -Gaussian fits to make predictions on the direct detection rate of DM particles.
This version consolidates the published version and the Erratum (changes in red)
References in corpus (19)
- Dark Matter Results from 225 Live Days of XENON100 Data
- Bayes in the sky: Bayesian inference and model selection in cosmology
- Phase-space structure in the local dark matter distribution and its signature in direct detection experiments
- A universal density slope - velocity anisotropy relation for relaxed structures
- Initial Conditions for Large Cosmological Simulations
- Evolution in the Halo Masses of Isolated Galaxies between z~1 and z~0: From DEEP2 to SDSS
- The Dark Matter at the End of the Galaxy
- The universal distribution of halo interlopers in projected phase space. Bias in galaxy cluster concentration and velocity anisotropy?
- Halo-to-Halo Similarity and Scatter in the Velocity Distribution of Dark Matter
- Physical properties underlying observed kinematics of satellite galaxies
- The distribution function of dark matter in massive haloes
- Mass, velocity anisotropy, and pseudo phase-space density profiles of Abell 2142
- The impact of going beyond the Maxwell distribution in direct dark matter detection rates
- A self-consistent phase-space distribution function for the anisotropic Dark Matter halo of the Milky Way
- Testing gravity with motion of satellites around galaxies: Newtonian gravity against Modified Newtonian Dynamics
- Taming astrophysical bias in direct dark matter searches
- The mass profile and dynamical status of the z~0.8 galaxy cluster LCDCS 0504
- Derivation of the anisotropy profile, constraints on the local velocity dispersion, and implications for direct detection
- Statistical mechanics of self-gravitating systems: mixing as a criterion for indistinguishability
Cited by in corpus (7)
- Simulated Milky Way analogues: implications for dark matter direct searches
- Simulated Milky Way analogues: implications for dark matter indirect searches
- How well does the Friends-of-Friends algorithm recover group properties from galaxy catalogs limited in both distance and luminosity?
- Combining Strong Lensing and Dynamics in Galaxy Clusters: integrating MAMPOSSt within LENSTOOL I. Application on SL2S J02140-0535
- Analytical derivation of the radial distribution function in spherical dark matter halos
- New model of density distribution for fermionic dark matter halos
- Entropy plateaus can emerge from gas replacement at a characteristic halo mass in simulated groups and clusters of galaxies