Galactic-scale evolution of classical and complex radio galaxies. Impact of ambient morphology and jet geometry

Fuente: arXiv
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Main Authors: Giri, Gourab, Ghosh, Prajnadipt, Joshi, Ravi, Caproni, Anderson, Rossi, Paola, Bodo, Gianluigi, Kundu, Sayan, Thorat, Kshitij, Chatterjee, Swarna, Borgogno, Dario, Vittorini, Valerio, Tavani, Marco
Format: Preprint
Published: 2026
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author Giri, Gourab
Ghosh, Prajnadipt
Joshi, Ravi
Caproni, Anderson
Rossi, Paola
Bodo, Gianluigi
Kundu, Sayan
Thorat, Kshitij
Chatterjee, Swarna
Borgogno, Dario
Vittorini, Valerio
Tavani, Marco
author_facet Giri, Gourab
Ghosh, Prajnadipt
Joshi, Ravi
Caproni, Anderson
Rossi, Paola
Bodo, Gianluigi
Kundu, Sayan
Thorat, Kshitij
Chatterjee, Swarna
Borgogno, Dario
Vittorini, Valerio
Tavani, Marco
contents Extragalactic jets exhibit a wide range of propagation orientations relative to the host galaxy's principal axis. This study investigate the spatiotemporal evolution of jets as a function of their propagation direction within their triaxial hosts-introducing varying degrees of environmental hindrance-and as a function of internal jet properties (while maintaining identical jet power)-introducing varying collimation and thrust. Observational data on extended radio sources are re-analyzed to identify key traits arising from variations in jet orientation and intrinsic properties. These findings are then systematically tested using a suite of 3D RMHD simulations. When a jet propagates along host's major axis (path of maximal environmental resistance), it produces an X-shaped morphology with secondary lobe aligns along the minor axis, co-evolving actively alongside the active jet. At intermediate angles to the major axis, the jet morphology transitions into a double-boomerang structure with notably curved lobes. Such lobes are interestingly regenerative through both backflow and jet precession mechanisms, making it difficult to disentangle their origin. Jets propagating along the minor axis (path of minimal resistance) exhibit faster propagation, forming classical double-lobed sources. With increased thrust and improved collimation (keeping jet power constant), these jets advance even more rapidly, potentially evolving into giant radio galaxy candidates. Counterexample sources that deviate from these traits were also modeled. The spatial variation of internal turbulence shows significant fluctuations below 1 kpc, with stronger magnetic fields further suppressing these irregularities. Magnetic field plays a key role in the radiative appearance of these sources, modulating features like missing or one-sided (wing) lobe emission, filamentary structures, and warmspot versus hotspot formation.
format Preprint
id arxiv_https___arxiv_org_abs_2604_05471
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Galactic-scale evolution of classical and complex radio galaxies. Impact of ambient morphology and jet geometry
Giri, Gourab
Ghosh, Prajnadipt
Joshi, Ravi
Caproni, Anderson
Rossi, Paola
Bodo, Gianluigi
Kundu, Sayan
Thorat, Kshitij
Chatterjee, Swarna
Borgogno, Dario
Vittorini, Valerio
Tavani, Marco
Astrophysics of Galaxies
Extragalactic jets exhibit a wide range of propagation orientations relative to the host galaxy's principal axis. This study investigate the spatiotemporal evolution of jets as a function of their propagation direction within their triaxial hosts-introducing varying degrees of environmental hindrance-and as a function of internal jet properties (while maintaining identical jet power)-introducing varying collimation and thrust. Observational data on extended radio sources are re-analyzed to identify key traits arising from variations in jet orientation and intrinsic properties. These findings are then systematically tested using a suite of 3D RMHD simulations. When a jet propagates along host's major axis (path of maximal environmental resistance), it produces an X-shaped morphology with secondary lobe aligns along the minor axis, co-evolving actively alongside the active jet. At intermediate angles to the major axis, the jet morphology transitions into a double-boomerang structure with notably curved lobes. Such lobes are interestingly regenerative through both backflow and jet precession mechanisms, making it difficult to disentangle their origin. Jets propagating along the minor axis (path of minimal resistance) exhibit faster propagation, forming classical double-lobed sources. With increased thrust and improved collimation (keeping jet power constant), these jets advance even more rapidly, potentially evolving into giant radio galaxy candidates. Counterexample sources that deviate from these traits were also modeled. The spatial variation of internal turbulence shows significant fluctuations below 1 kpc, with stronger magnetic fields further suppressing these irregularities. Magnetic field plays a key role in the radiative appearance of these sources, modulating features like missing or one-sided (wing) lobe emission, filamentary structures, and warmspot versus hotspot formation.
title Galactic-scale evolution of classical and complex radio galaxies. Impact of ambient morphology and jet geometry
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2604.05471