Pickles on FIRE: The 3D Shape Evolution of Simulated Milky Way-Mass Galaxies

Fuente: arXiv
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Main Authors: Xia, Luke Y., Klein, Courtney, Bullock, James S., Boylan-Kolchin, Michael, Caudillo, Vincent, Moreno, Jorge, Mercado, Francisco J., Feldmann, Robert
Format: Preprint
Published: 2025
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author Xia, Luke Y.
Klein, Courtney
Bullock, James S.
Boylan-Kolchin, Michael
Caudillo, Vincent
Moreno, Jorge
Mercado, Francisco J.
Feldmann, Robert
author_facet Xia, Luke Y.
Klein, Courtney
Bullock, James S.
Boylan-Kolchin, Michael
Caudillo, Vincent
Moreno, Jorge
Mercado, Francisco J.
Feldmann, Robert
contents JWST and HST observations have revealed numerous elongated, pickle-shaped galaxies at high to intermediate redshifts, with masses close to those expected for Milky Way progenitors. Here we use reduced-mass eigentensors to quantify the ellipsoidal shape evolution of thirteen Milky Way-mass galaxies simulated using FIRE-2 physics; all but one form disks at $z=0$. We find that all of our Milky Way progenitors go through phases when they are elongated. They often oscillate between spheroidal and elongated shapes in the early Universe over billion-year timescales. This is true whether we measure shapes weighted on stellar mass or luminosity, though the luminosity shapes show more extreme elongation and variance. In contrast, the stellar populations of our $z=0$ Milky Way analogs are never elongated and always symmetric about their minor axes. The youngest stars at $z=0$ reside in thin disks, intermediate-age stars reside in thick disks, and the oldest stars reside in flattened spheroids that are symmetric about their minor axes. Despite their symmetric shapes at $z=0$, the old and intermediate age stellar populations were often arranged in the shape of elongated pickles or triaxial spheroids at the time they formed, meaning that these populations changed shape significantly over time. Our results suggest that observed elongated galaxies seen in the early Universe are not stable structures, but rather reflect transitory phases of galaxy evolution.
format Preprint
id arxiv_https___arxiv_org_abs_2506_08508
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Pickles on FIRE: The 3D Shape Evolution of Simulated Milky Way-Mass Galaxies
Xia, Luke Y.
Klein, Courtney
Bullock, James S.
Boylan-Kolchin, Michael
Caudillo, Vincent
Moreno, Jorge
Mercado, Francisco J.
Feldmann, Robert
Astrophysics of Galaxies
JWST and HST observations have revealed numerous elongated, pickle-shaped galaxies at high to intermediate redshifts, with masses close to those expected for Milky Way progenitors. Here we use reduced-mass eigentensors to quantify the ellipsoidal shape evolution of thirteen Milky Way-mass galaxies simulated using FIRE-2 physics; all but one form disks at $z=0$. We find that all of our Milky Way progenitors go through phases when they are elongated. They often oscillate between spheroidal and elongated shapes in the early Universe over billion-year timescales. This is true whether we measure shapes weighted on stellar mass or luminosity, though the luminosity shapes show more extreme elongation and variance. In contrast, the stellar populations of our $z=0$ Milky Way analogs are never elongated and always symmetric about their minor axes. The youngest stars at $z=0$ reside in thin disks, intermediate-age stars reside in thick disks, and the oldest stars reside in flattened spheroids that are symmetric about their minor axes. Despite their symmetric shapes at $z=0$, the old and intermediate age stellar populations were often arranged in the shape of elongated pickles or triaxial spheroids at the time they formed, meaning that these populations changed shape significantly over time. Our results suggest that observed elongated galaxies seen in the early Universe are not stable structures, but rather reflect transitory phases of galaxy evolution.
title Pickles on FIRE: The 3D Shape Evolution of Simulated Milky Way-Mass Galaxies
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2506.08508