Origin of reduced dynamical friction by dark matter halos with net prograde rotation
arXiv:2311.07640 · doi:10.1093/mnras/stae288
Abstract
We provide an explanation for the reduced dynamical friction on galactic bars in spinning dark matter halos. Earlier work based on linear theory predicted an increase in dynamical friction when dark halos have a net forward rotation, because prograde orbits couple to bars with greater strength than retrograde orbits. Subsequent numerical studies, however, found the opposite trend: dynamical friction weakens with increasing spin of the halo. We revisit this problem and demonstrate that linear theory in fact correctly predicts a reduced torque in forward-rotating halos. We show that shifting the halo mass from retrograde to prograde phase space generates a positive gradient in the distribution function near the origin of the z-angular momentum (Lz=0), which results in a resonant transfer of Lz to the bar, making the net dynamical friction weaker. While this effect is subdominant for the major resonances, including the corotation resonance, it leads to a significant positive torque on the bar for the series of direct radial resonances, as these resonances are strongest at Lz=0. The overall dynamical friction from spinning halos is shown to decrease with the halo's spin, in agreement with the secular behavior of N-body simulations. We validate our linear calculation by computing the nonlinear torque from individual resonances using the angle-averaged Hamiltonian.
Accepted for publication in MNRAS after 1st revision
References in corpus (26)
- The spin and shape of dark matter haloes in the Millennium simulation of a LambdaCDM universe
- Angular momentum properties of haloes and their baryon content in the Illustris simulation
- Mass inflow rate into the Central Molecular Zone: observational determination and evidence of episodic accretion
- A centrally heated dark halo for our Galaxy
- NIHAO XXI: The emergence of Low Surface Brightness galaxies
- Self-consistent models of our Galaxy
- A bar in the inner halo of barred galaxies I. Structure and kinematics of a representative model
- A Self-Consistent, Time-Dependent Treatment of Dynamical Friction: New Insights regarding Core Stalling and Dynamical Buoyancy
- Kinematics of classical Cepheids in the Nuclear Stellar Disk
- The formation of low surface brightness galaxies in the IllustrisTNG simulation
- Dynamical Friction, Buoyancy and Core-Stalling -- I. A Non-perturbative Orbit-based Analysis
- Effects of Inner Halo Angular Momentum on the Peanut/X-shapes of Bars
- A first estimate of the Milky Way dark matter halo spin
- Mapping the stability of stellar rotating spheres via linear response theory
- The Coupling of Galactic Dark Matter Halos with Stellar Bars
- Dressed diffusion and friction coefficients in inhomogeneous multicomponent self-gravitating systems
- Near-Infrared Imaging of Barred Halo Dominated Low Surface Brightness Galaxies
- Secular resonant dressed orbital diffusion II : application to an isolated self similar tepid galactic disc
- Dynamical friction and feedback on galactic bars in the general fast-slow regime
- Do Low Surface Brightness galaxies host stellar bars?
- Modelling Dark Matter Halo Spin using Observations and Simulations: application to UGC 5288
- The Kinematic Richness of Star Clusters - II. Stability of Spherical Anisotropic Models with Rotation
- On the self-consistent time-dependent linearized response of stellar discs to external perturbations
- The epoch of the Milky Way's bar formation: dynamical modelling of Mira variables in the nuclear stellar disc
- Time-dependent secular evolution in galaxies
- Action-based dynamical models of M31-like galaxies
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- Morphological evolution of disk galaxies and their concentration, asymmetry and clumpiness (CAS) properties in simulations across Toomre's parameter
- A disturbance in the force. How force fluctuations hinder dynamical friction and induce core stalling
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