Formation of giant clumps in high-z disc galaxies by compressive turbulence

Nir Mandelker, Omry Ginzburg, Avishai Dekel, Frederic Bournaud, Mark R. Krumholz, Daniel Ceverino, Joel Primack

Research output: Contribution to journalArticlepeer-review

Abstract

We address the formation of giant clumps in violently unstable gas-rich disc galaxies at cosmic noon. While these are commonly thought to originate from gravitational Toomre instability, some cosmological simulations have indicated that clumps can form in Lagrangian proto-clump regions where the Toomre Q parameter is well above unity, which are linearly stable. Examining one of these cosmological simulations, we find that it exhibits an excess in compressive modes of turbulence with converging motions. The energy in converging motions within proto-clumps is <ani:tex-math id="TM0001" notation="LaTeX">${/sim} 70~{{/ /rm per/ cent}}$</ani:tex-math> of the total turbulent energy, compared to <ani:tex-math id="TM0002" notation="LaTeX">${/sim} 17~{{/ /rm per/ cent}}$</ani:tex-math> expected in equipartition. When averaged over the whole disc, <ani:tex-math id="TM0003" notation="LaTeX">${/sim} 40~{{/ /rm per/ cent}}$</ani:tex-math> of the turbulent energy is in compressive modes, mostly in converging motions, with the rest in solenoidal modes, compared to the <ani:tex-math id="TM0004" notation="LaTeX">$(1/3)-(2/3)$</ani:tex-math> division expected in equipartition. By contrast, we find that in an isolated-disc simulation with similar properties, resembling high-z star-forming galaxies, the different turbulence modes are in equipartition, both in proto-clumps and over the whole disc. We conclude that the origin of excessive converging motions in proto-clumps is external to the disc, and propose several mechanisms that can induce them. This is an additional mechanism for clump formation, complementary to and possibly preceding gravitational instability.

Original languageEnglish
Pages (from-to)L9-L15
JournalMonthly Notices of the Royal Astronomical Society: Letters
Volume538
Issue number1
DOIs
StatePublished - 1 Mar 2025

Keywords

  • galaxies: evolution
  • galaxies: formation
  • hydrodynamics
  • instabilities
  • methods: numerical

All Science Journal Classification (ASJC) codes

  • Astronomy and Astrophysics
  • Space and Planetary Science

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