Probing Non-rotating Black Hole in Kalb-Ramond Gravity: Imaging and Polarized Signatures Surrounded by Different Thick Accretion Flows

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Main Authors: Zeng, Xiao-Xiong, Yang, Chen-Yu, Aslam, Muhammad Israr, Saleem, Rabia
Format: Preprint
Published: 2025
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author Zeng, Xiao-Xiong
Yang, Chen-Yu
Aslam, Muhammad Israr
Saleem, Rabia
author_facet Zeng, Xiao-Xiong
Yang, Chen-Yu
Aslam, Muhammad Israr
Saleem, Rabia
contents In this work, we consider a spherically symmetric static black hole metric in Kalb-Ramond (KR) gravity, and investigate the impact of relevant parameters on the black hole shadow and polarization images. For black hole shadow images, we consider two geometrically thick accretion disk models such as a phenomenological RIAF-like model and an analytical HOU disk model. In each case, we observe a bright ring-like structure corresponding to the higher-order images with a surrounding region of non-zero intensity that represents the primary image. The increasing values of $\hatλ$ or $\hatγ$ results in decrease the size of the higher-order image, while increasing values of observer inclination $θ_{o}$ alter its shape and cause the horizons outline to be obscured. On the other hand, in HOU disk model, at high observer inclinations, the obscuration of the horizons outline by radiation from outside the equatorial plane is weakened. Consequently, the brightness of the primary image in the phenomenological model is significantly greater than that in the HOU disk model, indicating the strong gravitational lensing effect. For the polarized images, we use only the HOU disk model with anisotropic radiation, assuming an infalling accretion flow matter. The obtained results illustrate that the polarization intensity $P_{o}$ in the higher-order image region is significantly stronger than as compare to other regions, and it is rapidly decreases away from this region. The variation in $\hatλ$ and $\hatγ$ depicts the intrinsic structure of the space-time and $θ_o$ depends on the observers orientation, together they shape the polarization features.
format Preprint
id arxiv_https___arxiv_org_abs_2511_00586
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Probing Non-rotating Black Hole in Kalb-Ramond Gravity: Imaging and Polarized Signatures Surrounded by Different Thick Accretion Flows
Zeng, Xiao-Xiong
Yang, Chen-Yu
Aslam, Muhammad Israr
Saleem, Rabia
General Relativity and Quantum Cosmology
In this work, we consider a spherically symmetric static black hole metric in Kalb-Ramond (KR) gravity, and investigate the impact of relevant parameters on the black hole shadow and polarization images. For black hole shadow images, we consider two geometrically thick accretion disk models such as a phenomenological RIAF-like model and an analytical HOU disk model. In each case, we observe a bright ring-like structure corresponding to the higher-order images with a surrounding region of non-zero intensity that represents the primary image. The increasing values of $\hatλ$ or $\hatγ$ results in decrease the size of the higher-order image, while increasing values of observer inclination $θ_{o}$ alter its shape and cause the horizons outline to be obscured. On the other hand, in HOU disk model, at high observer inclinations, the obscuration of the horizons outline by radiation from outside the equatorial plane is weakened. Consequently, the brightness of the primary image in the phenomenological model is significantly greater than that in the HOU disk model, indicating the strong gravitational lensing effect. For the polarized images, we use only the HOU disk model with anisotropic radiation, assuming an infalling accretion flow matter. The obtained results illustrate that the polarization intensity $P_{o}$ in the higher-order image region is significantly stronger than as compare to other regions, and it is rapidly decreases away from this region. The variation in $\hatλ$ and $\hatγ$ depicts the intrinsic structure of the space-time and $θ_o$ depends on the observers orientation, together they shape the polarization features.
title Probing Non-rotating Black Hole in Kalb-Ramond Gravity: Imaging and Polarized Signatures Surrounded by Different Thick Accretion Flows
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2511.00586