English

Accretion flows around exotic tidal wormholes I. Ray-tracing

General Relativity and Quantum Cosmology 2022-09-21 v2 High Energy Astrophysical Phenomena

Abstract

This paper investigates the various spherically symmetric wormhole solutions in the presence of tidal forces and applies numerous methods, such as test particle orbital dynamics, ray-tracing and microlensing. We make the theoretical predictions on the test particle orbital motion around the tidal wormholes with the use of normalized by L2\mathcal{L}^2 effective potential. In order to obtain the ray-tracing images (of both geometrically thin and thick accretion disks, relativistic jets), we properly modify the open source GYOTO\texttt{GYOTO} code with python interface. We applied this techniques to probe the accretion flows nearby the Schwarzschild-like and charged Reissner-N\"ordstrom (RS) wormholes (we assumed both charged RS wormhole and special case with the vanishing electromagnetic charge, namely Damour-Solodukhin (DS) wormhole). It was shown that the photon sphere for Schwarzschild-like wormhole presents for both thin and thick accretion disks and even for the vanishing tidal forces. Moreover, it was observed that rphr_{\mathrm{ph}}\to\infty as α\alpha\to\infty, which constraints α\alpha parameter to be sufficiently small and positive in order to respect the EHT observations. On the other hand, for the case of RS wormhole, photon sphere radius shrinks as Λ\Lambda\to\infty, as it was predicted by the effective potential. In addition to the accretion disks, we as well probe the relativistic jets around two wormhole solutions of our consideration. Finally, with the help of star bulb microlensing, we approximate the radius of the wormhole shadow and as we found out, for Schild WH, RShr0R_{\mathrm{Sh}}\approx r_0 for ZTF and grows linearly with α\alpha. On the contrary, shadow radius for charged wormholes slowly decreases with the growing trend of DS parameter Λ\Lambda.

Keywords

Cite

@article{arxiv.2207.07193,
  title  = {Accretion flows around exotic tidal wormholes I. Ray-tracing},
  author = {Oleksii Sokoliuk and Subhrat Praharaj and Alexander Baransky and P. K. Sahoo},
  journal= {arXiv preprint arXiv:2207.07193},
  year   = {2022}
}

Comments

18 pages, 14 figures, revision submitted to A&A