Large-Scale Stellar Age-Velocity Spiral Pattern in NGC 4030

Fuente: arXiv
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Main Authors: Breda, Iris, van de Ven, Glenn, Thater, Sabine, Falcón-Barroso, J., Jethwa, Prashin, Gadotti, Dimitri A., Onodera, Masato, Pessa, Ismael, Schaye, Joop, Hensler, Gerhard, Brinchmann, Jarle, -Krause, Anja F., Krajnović, Davor, Ziegler, Bodo
Format: Preprint
Published: 2024
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author Breda, Iris
van de Ven, Glenn
Thater, Sabine
Falcón-Barroso, J.
Jethwa, Prashin
Gadotti, Dimitri A.
Onodera, Masato
Pessa, Ismael
Schaye, Joop
Hensler, Gerhard
Brinchmann, Jarle
-Krause, Anja F.
Krajnović, Davor
Ziegler, Bodo
author_facet Breda, Iris
van de Ven, Glenn
Thater, Sabine
Falcón-Barroso, J.
Jethwa, Prashin
Gadotti, Dimitri A.
Onodera, Masato
Pessa, Ismael
Schaye, Joop
Hensler, Gerhard
Brinchmann, Jarle
-Krause, Anja F.
Krajnović, Davor
Ziegler, Bodo
contents The processes driving the formation and evolution of late-type galaxies (LTGs) continue to be a debated subject in extragalactic astronomy. Investigating stellar kinematics, especially when combined with age estimates, provides crucial insights into the formation and subsequent development of galactic discs. Post-processing of exceptionally high-quality Integral Field Spectroscopy (IFS) data of NGC 4030 acquired with the Multi Unit Spectroscopic Explorer (MUSE), clearly reveals a striking grand design spiral pattern in the velocity dispersion map not previously detected in other galaxies. This pattern spatially correlates with HII regions, suggesting that stars currently being born exhibit lower velocity dispersion as compared to surrounding areas where star formation (SF) is less active. We examine the age-velocity relation (AVR) and propose that its configuration might be shaped by a combination of heating mechanisms, seemingly consistent with findings from recent high-resolution cosmological zoom-in simulations. The complex structure of the uncovered AVR of NGC 4030 support the hypothesis that stellar populations initially inherit the velocity dispersion σ of the progenitor cold molecular gas, which depends on formation time and galactocentric distance, subsequently experiencing kinematic heating by cumulative gravitational interactions during their lifetime. While advancing our understanding of the AVR, these findings offer a new framework for investigating disk heating mechanisms, and their role in the evolution of galactic disks.
format Preprint
id arxiv_https___arxiv_org_abs_2411_16372
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Large-Scale Stellar Age-Velocity Spiral Pattern in NGC 4030
Breda, Iris
van de Ven, Glenn
Thater, Sabine
Falcón-Barroso, J.
Jethwa, Prashin
Gadotti, Dimitri A.
Onodera, Masato
Pessa, Ismael
Schaye, Joop
Hensler, Gerhard
Brinchmann, Jarle
-Krause, Anja F.
Krajnović, Davor
Ziegler, Bodo
Astrophysics of Galaxies
The processes driving the formation and evolution of late-type galaxies (LTGs) continue to be a debated subject in extragalactic astronomy. Investigating stellar kinematics, especially when combined with age estimates, provides crucial insights into the formation and subsequent development of galactic discs. Post-processing of exceptionally high-quality Integral Field Spectroscopy (IFS) data of NGC 4030 acquired with the Multi Unit Spectroscopic Explorer (MUSE), clearly reveals a striking grand design spiral pattern in the velocity dispersion map not previously detected in other galaxies. This pattern spatially correlates with HII regions, suggesting that stars currently being born exhibit lower velocity dispersion as compared to surrounding areas where star formation (SF) is less active. We examine the age-velocity relation (AVR) and propose that its configuration might be shaped by a combination of heating mechanisms, seemingly consistent with findings from recent high-resolution cosmological zoom-in simulations. The complex structure of the uncovered AVR of NGC 4030 support the hypothesis that stellar populations initially inherit the velocity dispersion σ of the progenitor cold molecular gas, which depends on formation time and galactocentric distance, subsequently experiencing kinematic heating by cumulative gravitational interactions during their lifetime. While advancing our understanding of the AVR, these findings offer a new framework for investigating disk heating mechanisms, and their role in the evolution of galactic disks.
title Large-Scale Stellar Age-Velocity Spiral Pattern in NGC 4030
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2411.16372