Simulation studies of dark energy clustering induced by the formation of dark matter halos
Qiao Wang, Zuhui Fan

TL;DR
This study uses simulations within a spherical collapse model to analyze how dark energy perturbations cluster around dark matter halos, revealing dependence on parameters like the equation of state and sound speed, and validating the fluid approach for dark energy.
Contribution
It introduces a simulation method for dark energy perturbations during halo formation, considering realistic mass accretion and nonlinear stages, and confirms the fluid description's validity.
Findings
Dark energy perturbations follow the gravitational potential of dark matter halos.
Perturbation amplitude increases with halo mass and varies with sound speed.
Fluid approach effectively models dark energy behavior during nonlinear structure formation.
Abstract
In this paper, we present a simulation method within the two-component spherical collapse model to investigate dark energy perturbations associated with the formation of dark matter halos. The realistic mass accretion history of a dark matter halo taking into account its fast and slow growth is considered by imposing suitable initial conditions and isotropized virializations for the spherical collapse process. The dark energy component is treated as a perfect fluid described by two important parameters, the equation of state parameter and the sound speed . Quintessence models with are analyzed. We adopt the Newtonian gauge to describe the spacetime which is perturbed mainly by the formation of a dark matter halo. It is found that the dark energy density perturbation depends on and , and its behavior follows closely the gravitational potential…
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