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Effect of dark matter halo on transonic accretion flow around a galactic black hole

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arxiv 2501.07456 v2 pith:C4IBI4NP submitted 2025-01-13 astro-ph.HE gr-qc

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abstract

We investigate the transonic accretion flow in the spacetime of a supermassive black hole (BH) coupled to an anisotropic dark matter fluid, as proposed by Cardoso {\it et al}. We essentially compare the accretion properties of the Cardoso BH with those of an isolated Schwarzschild BH. The Cardoso BH is described by the halo mass ($M_{\rm H}$) and its characteristic length scale ($a_0$). Various classes of accretion solution topologies (e.g., A and W-types) are obtained by solving the dynamical equations of the flow in a fully general relativistic framework. We find that the global accretion solutions in the identified solution topologies are substantially influenced by the halo parameters ($M_{\rm H}, a_0$) when the halo mass is high or the dark matter distribution is concentrated near the black hole. In this high compactness regime, different observational signatures of the accretion disc, like the spectral energy distribution (SED) and bolometric disc luminosity, are found to exhibit considerable deviations from the known results in the Schwarzschild BH model. Furthermore, we obtain shock-induced accretion solutions, where different shock properties, such as the shock radius ($r_{\rm sh}$), flow mass density ($\rho$) compression, and electron temperature ($T_e$) compression across the shock front, are potentially altered from those in the Schwarzschild BH model when the halo compactness is high. Interestingly, the existing shock parameter space, defined by the flow specific angular momentum ($\lambda$) and energy ($E$), is largely reduced for higher halo compactness compared to that of the Schwarzschild BH. These unique features offer a possible valuable tool for characterizing the presence or absence of a dark matter halo around a galactic black hole.

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  1. On Equation of State of Dark Matter around Massive Black Holes

    gr-qc 2025-01 conditional novelty 4.0 of 10

    Static dark matter halos around Schwarzschild black holes are viable only if the dark matter pressure is negative, under two toy equations of state and a vanishing horizon-density boundary condition.

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