Survival or Destruction : Effects of Spheroidal Satellite Collisions on Bars in Milky Way–like Galaxies
(2026) In Astrophysical Journal 1002(1).- Abstract
Although stellar bars are prevalent in local galaxies, unbarred galaxies constitute a significant fraction, particularly at high redshifts. While some galaxies are unbarred by nature due to stability against the bar instability, several mechanisms capable of transforming barred galaxies into unbarred systems have also been proposed, such as central mass concentration, specific dark matter halo morphologies and tidal interactions. Regarding galactic interactions, mergers can undoubtedly disrupt bars while potentially destroying the entire disk. However, the effects of pure collisions (nonmerging scenarios) on bars remain unclear, with limited existing studies yielding contradictory conclusions. Here we aim to systematically investigate... (More)
Although stellar bars are prevalent in local galaxies, unbarred galaxies constitute a significant fraction, particularly at high redshifts. While some galaxies are unbarred by nature due to stability against the bar instability, several mechanisms capable of transforming barred galaxies into unbarred systems have also been proposed, such as central mass concentration, specific dark matter halo morphologies and tidal interactions. Regarding galactic interactions, mergers can undoubtedly disrupt bars while potentially destroying the entire disk. However, the effects of pure collisions (nonmerging scenarios) on bars remain unclear, with limited existing studies yielding contradictory conclusions. Here we aim to systematically investigate the disruptive effects of collisions on bars hosted by Milky Way–like galaxies using N-body/smoothed particle hydrodynamics simulations. We model collisions between the barred galaxy and a spherical intruder, conducting multiple simulations by varying interaction parameters, with mass ratios set at 1:3, 1:5, and 1:15. We find that bars are remarkably robust, with most interactions failing to significantly reduce their strength or pattern speed. Only off-center high-inclination retrograde collisions can effectively destroy bars, while central high-inclination collisions can substantially decrease the pattern speed. Such destruction and deceleration primarily arise from gravitational forces rather than gas-related processes. Notably, compared to collisions occurring along the bar’s major axis, those along the minor axis cause greater weakening but can slow the bar’s natural deceleration. Furthermore, changes in mass resolution do not significantly affect the results when the resolution is better than ∼105 M⊙.
(Less)
- author
- Zhou, Yufan Fane
; Li, Zhiyuan
; Jiménez-Arranz, Óscar
LU
and Roca-Fàbrega, Santi
LU
- organization
- publishing date
- 2026-05
- type
- Contribution to journal
- publication status
- published
- subject
- keywords
- Barred spiral galaxies (136), Galaxy collisions (585), Galaxy evolution (594), N-body simulations (1083)
- in
- Astrophysical Journal
- volume
- 1002
- issue
- 1
- publisher
- American Astronomical Society
- external identifiers
-
- scopus:105037509506
- ISSN
- 0004-637X
- DOI
- 10.3847/1538-4357/ae593a
- language
- English
- LU publication?
- yes
- id
- 53d40bb9-5092-4c14-98d2-c5e70bed0633
- date added to LUP
- 2026-08-17 14:19:41
- date last changed
- 2026-08-17 14:19:41
@article{53d40bb9-5092-4c14-98d2-c5e70bed0633,
abstract = {{<p>Although stellar bars are prevalent in local galaxies, unbarred galaxies constitute a significant fraction, particularly at high redshifts. While some galaxies are unbarred by nature due to stability against the bar instability, several mechanisms capable of transforming barred galaxies into unbarred systems have also been proposed, such as central mass concentration, specific dark matter halo morphologies and tidal interactions. Regarding galactic interactions, mergers can undoubtedly disrupt bars while potentially destroying the entire disk. However, the effects of pure collisions (nonmerging scenarios) on bars remain unclear, with limited existing studies yielding contradictory conclusions. Here we aim to systematically investigate the disruptive effects of collisions on bars hosted by Milky Way–like galaxies using N-body/smoothed particle hydrodynamics simulations. We model collisions between the barred galaxy and a spherical intruder, conducting multiple simulations by varying interaction parameters, with mass ratios set at 1:3, 1:5, and 1:15. We find that bars are remarkably robust, with most interactions failing to significantly reduce their strength or pattern speed. Only off-center high-inclination retrograde collisions can effectively destroy bars, while central high-inclination collisions can substantially decrease the pattern speed. Such destruction and deceleration primarily arise from gravitational forces rather than gas-related processes. Notably, compared to collisions occurring along the bar’s major axis, those along the minor axis cause greater weakening but can slow the bar’s natural deceleration. Furthermore, changes in mass resolution do not significantly affect the results when the resolution is better than ∼10<sup>5</sup> M<sub>⊙</sub>.</p>}},
author = {{Zhou, Yufan Fane and Li, Zhiyuan and Jiménez-Arranz, Óscar and Roca-Fàbrega, Santi}},
issn = {{0004-637X}},
keywords = {{Barred spiral galaxies (136); Galaxy collisions (585); Galaxy evolution (594); N-body simulations (1083)}},
language = {{eng}},
number = {{1}},
publisher = {{American Astronomical Society}},
series = {{Astrophysical Journal}},
title = {{Survival or Destruction : Effects of Spheroidal Satellite Collisions on Bars in Milky Way–like Galaxies}},
url = {{http://dx.doi.org/10.3847/1538-4357/ae593a}},
doi = {{10.3847/1538-4357/ae593a}},
volume = {{1002}},
year = {{2026}},
}