The supersonic nature of jellyfish galaxies

Fuente: arXiv
Enregistré dans:
Détails bibliographiques
Auteurs principaux: Ignesti, Alessandro, Loi, Francesca, Marasco, Antonino, Vulcani, Benedetta, Poggianti, Bianca M., Pfrommer, Christoph, Gullieuszik, Marco, Moretti, Alessia, Serra, Paolo, Tonnesen, Stephanie, Smith, Rory, Bacchini, Cecilia, Verheijen, Marc A. W., Gitti, Myriam, Wolter, Anna, George, Koshy, Jaffe, Yara, Paladino, Rosita, Peluso, Giorgia, Radovich, Mario, Lassen, Augusto E., Tomicic, Neven, Kamphuis, Peter
Format: Preprint
Publié: 2026
Sujets:
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1866917374416912384
author Ignesti, Alessandro
Loi, Francesca
Marasco, Antonino
Vulcani, Benedetta
Poggianti, Bianca M.
Pfrommer, Christoph
Gullieuszik, Marco
Moretti, Alessia
Serra, Paolo
Tonnesen, Stephanie
Smith, Rory
Bacchini, Cecilia
Verheijen, Marc A. W.
Gitti, Myriam
Wolter, Anna
George, Koshy
Jaffe, Yara
Paladino, Rosita
Peluso, Giorgia
Radovich, Mario
Lassen, Augusto E.
Tomicic, Neven
Kamphuis, Peter
author_facet Ignesti, Alessandro
Loi, Francesca
Marasco, Antonino
Vulcani, Benedetta
Poggianti, Bianca M.
Pfrommer, Christoph
Gullieuszik, Marco
Moretti, Alessia
Serra, Paolo
Tonnesen, Stephanie
Smith, Rory
Bacchini, Cecilia
Verheijen, Marc A. W.
Gitti, Myriam
Wolter, Anna
George, Koshy
Jaffe, Yara
Paladino, Rosita
Peluso, Giorgia
Radovich, Mario
Lassen, Augusto E.
Tomicic, Neven
Kamphuis, Peter
contents All gas-rich galaxies in cluster environments are expected to experience ram-pressure stripping from the intra-cluster medium. However, only a fraction of these develop ongoing star-formation in their stripped tail, becoming the so-called ``jellyfish'' galaxies. In this work we provide observational evidence that magnetic fields can signal differences in the extraplanar star formation and explore what are the physical conditions that lead to the formation of a jellyfish galaxy. We first focus on JO147, a jellyfish galaxy that features weak star formation activity in its tail. Using MeerKAT radio continuum observations, we discover polarized emission only in a small fraction of its tail, with an average fraction of $~10\%$, and a low Mach number $\mathcal{M}=1.3-1.6$, which suggests a possible association between magnetic field draping, shock-compression of the gas, and extraplanar star formation activity. Then, we test this scenario in a sample of 17 jellyfish galaxies from the GASP project. We combine dynamical models for their orbits within the host clusters with realistic cluster temperature profiles to infer their Mach number, and we find a positive correlation between it and the star formation activity in their tail. We conclude that supersonic motion is a necessary condition for triggering star formation in the stripped tails of jellyfish galaxies. Our findings provide empirical evidence that the critical factor preventing the stripped gas evaporation is the shock compression induced by the supersonic motion through the cluster. This process likely enhances the magnetic field surrounding the galaxy and the properties of the stripped material.
format Preprint
id arxiv_https___arxiv_org_abs_2602_21821
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The supersonic nature of jellyfish galaxies
Ignesti, Alessandro
Loi, Francesca
Marasco, Antonino
Vulcani, Benedetta
Poggianti, Bianca M.
Pfrommer, Christoph
Gullieuszik, Marco
Moretti, Alessia
Serra, Paolo
Tonnesen, Stephanie
Smith, Rory
Bacchini, Cecilia
Verheijen, Marc A. W.
Gitti, Myriam
Wolter, Anna
George, Koshy
Jaffe, Yara
Paladino, Rosita
Peluso, Giorgia
Radovich, Mario
Lassen, Augusto E.
Tomicic, Neven
Kamphuis, Peter
Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
All gas-rich galaxies in cluster environments are expected to experience ram-pressure stripping from the intra-cluster medium. However, only a fraction of these develop ongoing star-formation in their stripped tail, becoming the so-called ``jellyfish'' galaxies. In this work we provide observational evidence that magnetic fields can signal differences in the extraplanar star formation and explore what are the physical conditions that lead to the formation of a jellyfish galaxy. We first focus on JO147, a jellyfish galaxy that features weak star formation activity in its tail. Using MeerKAT radio continuum observations, we discover polarized emission only in a small fraction of its tail, with an average fraction of $~10\%$, and a low Mach number $\mathcal{M}=1.3-1.6$, which suggests a possible association between magnetic field draping, shock-compression of the gas, and extraplanar star formation activity. Then, we test this scenario in a sample of 17 jellyfish galaxies from the GASP project. We combine dynamical models for their orbits within the host clusters with realistic cluster temperature profiles to infer their Mach number, and we find a positive correlation between it and the star formation activity in their tail. We conclude that supersonic motion is a necessary condition for triggering star formation in the stripped tails of jellyfish galaxies. Our findings provide empirical evidence that the critical factor preventing the stripped gas evaporation is the shock compression induced by the supersonic motion through the cluster. This process likely enhances the magnetic field surrounding the galaxy and the properties of the stripped material.
title The supersonic nature of jellyfish galaxies
topic Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
url https://arxiv.org/abs/2602.21821