Complexity factor for a static self-gravitating sphere in Rastall-Rainbow gravity

Fuente: arXiv
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Main Authors: Ye, Zhou-Li, Wang, Yu, Yang, Rui-Xin, Liu, Dao-Jun
Format: Preprint
Published: 2024
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author Ye, Zhou-Li
Wang, Yu
Yang, Rui-Xin
Liu, Dao-Jun
author_facet Ye, Zhou-Li
Wang, Yu
Yang, Rui-Xin
Liu, Dao-Jun
contents We generalized Herrera's definition of complexity factor for static spherically symmetric fluid distributions to Rastall-Rainbow theory of gravity. For this purpose, an energy-dependent equation of motion is employed in accordance with the principle of gravity's rainbow. It is found that the complexity factor appears in the orthogonal splitting of the Riemann curvature tensor, and measures the deviation of the value of the active gravitational mass from the simplest system under the combined corrections of Rastall and rainbow. In the low-energy limit, all the results we have obtained reduce to the counterparts of general relativity when the non-conserved parameter is taken to be one. We also demonstrate how to build an anisotropic or isotropic star model using complexity approach. In particular, the vanishing complexity factor condition in Rastall-Rainbow gravity is exactly the same as that derived in general relativity. This fact may imply a deeper geometric foundation for the complexity factor.
format Preprint
id arxiv_https___arxiv_org_abs_2410_03095
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Complexity factor for a static self-gravitating sphere in Rastall-Rainbow gravity
Ye, Zhou-Li
Wang, Yu
Yang, Rui-Xin
Liu, Dao-Jun
General Relativity and Quantum Cosmology
We generalized Herrera's definition of complexity factor for static spherically symmetric fluid distributions to Rastall-Rainbow theory of gravity. For this purpose, an energy-dependent equation of motion is employed in accordance with the principle of gravity's rainbow. It is found that the complexity factor appears in the orthogonal splitting of the Riemann curvature tensor, and measures the deviation of the value of the active gravitational mass from the simplest system under the combined corrections of Rastall and rainbow. In the low-energy limit, all the results we have obtained reduce to the counterparts of general relativity when the non-conserved parameter is taken to be one. We also demonstrate how to build an anisotropic or isotropic star model using complexity approach. In particular, the vanishing complexity factor condition in Rastall-Rainbow gravity is exactly the same as that derived in general relativity. This fact may imply a deeper geometric foundation for the complexity factor.
title Complexity factor for a static self-gravitating sphere in Rastall-Rainbow gravity
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2410.03095