Gravitational redshift/blueshift of light emitted by geodesic test particles, frame-dragging and pericentre-shift effects, in the Kerr-Newman-de Sitter and Kerr-Newman black hole geometries
G. V. Kraniotis

TL;DR
This paper provides exact analytic formulas for gravitational redshift, frame-dragging, and periapsis shift effects for particles orbiting Kerr-Newman-(anti) de Sitter black holes, enhancing understanding of black hole spacetime phenomena.
Contribution
It introduces new closed-form analytic expressions for redshift, frame dragging, and periapsis shift in Kerr-Newman-(anti) de Sitter spacetimes, including special functions and orbit parameters.
Findings
Derived exact formulas for redshift and blueshift of photons.
Presented closed-form expressions for frame dragging of spherical orbits.
Obtained a novel formula for periapsis advance involving elliptic and hypergeometric functions.
Abstract
We investigate the redshift and blueshift of light emitted by timelike geodesic particles in orbits around a Kerr-Newman-(anti) de Sitter (KN(a)dS) black hole. Specifically we compute the redshift and blueshift of photons that are emitted by geodesic massive particles and travel along null geodesics towards a distant observer-located at a finite distance from the KN(a)dS black hole. For this purpose we use the Killing-vector formalism and the associated first integrals-constants of motion. We consider in detail stable timelike equatorial circular orbits of stars and express their corresponding redshift/blueshift in terms of the metric physical black hole parameters (angular momentum per unit mass, mass, electric charge and the cosmological constant) and the orbital radii of both the emitter star and the distant observer. These radii are linked through the constants of motion along the…
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