Joss Bland‐Hawthorn, Thor Tepper-García, Oscar Agertz, Christoph Federrath, M. Haywood, P. Di Matteo, T. R. Bedding, Takafumi Tsukui, Emily Wisnioski, Melissa Ness, K. C. Freeman
Abstract In response to recent observations from JWST and Atacama Large Millimeter Array, we explore a new class of dynamically self-consistent models that mimics a plausible progenitor of the Milky Way over a wide range of disk gas fractions, f gas . The high gas surface densities encourage vigorous star formation, which in turn couples with the gas to drive turbulence. We show that this coupling through momentum recoil drives a random walk of the baryonic potential minimum with respect to total gravitational potential, Φ tot ( R , ϕ , z ). The amplitude of the bulk motion depends on the feedback strength, which in turn is directly associated with f gas . At its most extreme, when gas is the sole contributor to the disk potential ( f gas = 100%), the amplitude of the walk can reach up to R ≈ 5 kpc within Φ tot . The disk dominates over dark matter ( f disk ≳ 50%) within R s = 2.2 R disk , where R disk is the exponential disk scale length. For a lower f disk and/or f gas , the 3D sloshing amplitude and velocity are reduced. The combination of strong feedback and sloshing leads to the newly formed stars being dynamically heated and settling to a more spatially extended disk population. The 3D heating process is roughly isotropic but its effects are more noticeable in ∣ z ∣ due to the initial dynamical coldness of the star-forming disk. Such a disk has enhanced [ α /Fe] stellar abundances and a vertical (but no radial) gradient in stellar age and metallicity, both consistent with the Milky Way’s thick stellar disk.