TY - JOUR
T1 - Void formation
T2 - Does the void-in-cloud process matter?
AU - Chan, Hei Yin Jowett
AU - Chiba, Masashi
AU - Ishiyama, Tomoaki
N1 - Funding Information:
part by a Grant-in-Aid for Scientific Research from the Japan Society for the Promotion of science (JSPS) through grant 17H01101 and from the Ministry of Education, Culture, Sports, Science, and Technology (MEXT) through grants 18H04334, 17H04828, 18H04337, and 18H05437. The CosmoSim data base used in this paper is a service by the Leibniz-Institute for Astrophysics Potsdam (AIP). The MultiDark-Planck simulation suite has been performed on the Supermuc supercomputer at Leibniz Supercomputing Centre using time granted by PRACE. Numerical computations of Phi-0 and Phi-1 simulations were partially carried out on the K computer at the RIKEN Advanced Institute for Computational Science (Proposal numbers hp170231 and hp180180), and Aterui and Aterui II supercomputer at Center for Computational Astrophysics, CfCA, of National Astronomical Observatory of Japan. TI has been supported by MEXT as ‘Priority Issue on Post-K computer’ (Elucidation of the Fundamental Laws and Evolution of the Universe) and JICFuS.
PY - 2019/12/1
Y1 - 2019/12/1
N2 - We investigate the basic properties of voids from high-resolution, cosmological N-body simulations of ⋀-dominated cold dark matter (⋀CDM) models, in order to compare with the analytical model of Sheth and van de Weygaert (SvdW) for void statistics. For the subsample of five dark matter simulations in the ⋀CDM cosmology with box sizes ranging from 1000 to 8 h−1 Mpc, we find that the standard void-in-cloud effect is too simplified to explain several properties of identified small voids in simulations. (i) The number density of voids is found to be larger than the prediction of the analytical model up to 2 orders of magnitude below 1 h−1 Mpc scales. The Press-Schechter model with the linear critical threshold of void δv = −2.71, or a naive power law, is found to provide an excellent agreement with the void size function, suggesting that the void-in-cloud effect does not suppress as much voids as predicted by the SvdW model. (ii) We then measured the density and velocity profiles of small voids, and find that they are mostly partially collapsing underdensities, instead of being completely crushed in the standard void-in-cloud scenario. (iii) Finally, we measure the void distributions in four different tidal environments, and find that the void-in-void effect alone can explain the correlation between distribution and environments, whereas the void-in-cloud effect is only weakly influencing the abundance of voids, even in filaments and clusters.
AB - We investigate the basic properties of voids from high-resolution, cosmological N-body simulations of ⋀-dominated cold dark matter (⋀CDM) models, in order to compare with the analytical model of Sheth and van de Weygaert (SvdW) for void statistics. For the subsample of five dark matter simulations in the ⋀CDM cosmology with box sizes ranging from 1000 to 8 h−1 Mpc, we find that the standard void-in-cloud effect is too simplified to explain several properties of identified small voids in simulations. (i) The number density of voids is found to be larger than the prediction of the analytical model up to 2 orders of magnitude below 1 h−1 Mpc scales. The Press-Schechter model with the linear critical threshold of void δv = −2.71, or a naive power law, is found to provide an excellent agreement with the void size function, suggesting that the void-in-cloud effect does not suppress as much voids as predicted by the SvdW model. (ii) We then measured the density and velocity profiles of small voids, and find that they are mostly partially collapsing underdensities, instead of being completely crushed in the standard void-in-cloud scenario. (iii) Finally, we measure the void distributions in four different tidal environments, and find that the void-in-void effect alone can explain the correlation between distribution and environments, whereas the void-in-cloud effect is only weakly influencing the abundance of voids, even in filaments and clusters.
KW - Dark matter
KW - Large-scale structure of Universe
KW - Methods: numerical
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U2 - 10.1093/mnras/stz2786
DO - 10.1093/mnras/stz2786
M3 - Article
AN - SCOPUS:85079602775
VL - 490
SP - 2405
EP - 2413
JO - Monthly Notices of the Royal Astronomical Society
JF - Monthly Notices of the Royal Astronomical Society
SN - 0035-8711
IS - 2
ER -