The influences of the Magellanic Clouds on the Galaxy: Pole shift, warp, and star formation history
arXiv:1202.0358 · doi:10.1111/j.1365-2966.2012.20621.x
Abstract
We investigate how the Large Magellanic Cloud (LMC) influences the evolution of the Galaxy after the LMC enters into the virial radius of the dark matter halo of the Galaxy for the first time. Both the Galaxy and the LMC are modeled as N-body particles in our models so that the dynamical influences of the LMC on the Galaxy can be investigated in a fully self-consistent manner. Furthermore, the orbital parameters for the LMC are carefully chosen such that the present location of the LMC in the Galaxy can be rather precisely reproduced in our simulations. We particularly investigate the influences of the LMC on the precession rate, the outer stellar and gaseous structures, and the star formation history of the Galaxy. Our principals results are summarized as follows. The LMC-Galaxy dynamical interaction can cause "pole shift" (or irregular precession/nutation) of the Galaxy and the typical rate of pole shift (dot θ_{d}) is ~2 degree Gyr^{-1} corresponding to ~ 7 muas yr^{-1}. The LMC-Galaxy interaction induces the formation of the outer warp structures of the Galaxy, which thus confirms the results of previous numerical simulations on the formation of the Galactic warp. The LMC-Galaxy interaction also induces the formation of outer (R>20 kpc) spiral arms and increases the vertical velocity dispersion of the outer disk significantly. The mean star formation rate of the Galaxy for the last several Gyrs can be hardly influenced by the LMC's tidal force. The age and metallicity distribution of stars in the solar-neighborhood (7 kpc < R < 10 kpc) for the last several Gyr can be only slightly changed by the past LMC-Galaxy interaction. Based on these results, we discuss how the possible ongoing Galactic pole shift with 10 muas yr^{-1} can be detected by future observational studies by GAIA.
19 pages, 25 figures, accepted for the publication of MNRAS
References in corpus (14)
- Are the Magellanic Clouds on their First Passage about the Milky Way?
- Outer structure of the Galactic warp and flare: explaining the Canis Major over-density
- Assessing the Milky Way Satellites Associated with the Sagittarius Dwarf Spheroidal Galaxy
- The Vertical Structure of the Outer Milky Way HI Disk
- Infall of substructures onto a Milky Way-like dark halo
- A Magellanic Origin for the Warp of the Galaxy
- Constraining the orbital history of the Magellanic Clouds: A new bound scenario suggested by the tidal origin of the Magellanic Stream
- Proper Motion Study of the Magellanic Clouds using SPM material
- Accretion of the Magellanic system onto the Galaxy
- Rotation of the Milky Way and the formation of the Magellanic Stream
- A possible common halo of the Magellanic Clouds
- When was the Large Magellanic Cloud accreted onto the Galaxy ?
- The Effect of Drag from the Galactic Hot Halo on the Magellanic Stream and Leading Arm
- Stellar halos and elliptical galaxy formation: Origin of dynamical properties of the planetary nebular systems
Cited by in corpus (10)
- Gaia Data Release 2: Kinematics of globular clusters and dwarf galaxies around the Milky Way
- A sub-parsec resolution simulation of the Milky Way: Global structure of the ISM and properties of molecular clouds
- And yet it moves: The dangers of artificially fixing the Milky Way center of mass in the presence of a massive Large Magellanic Cloud
- Coevolution of dust, gas, and stars in galaxies - I. Spatial distributions and scaling-relations of dust and molecular hydrogen
- The age-metallicity relationship of the Large Magellanic Cloud field star population from wide-field Washington photometry
- An Updated SMC and Magellanic Bridge Catalog of Star Clusters, Associations and Related Objects
- Simulating galaxy evolution with a non-universal stellar initial mass function
- The VMC survey -IX. Pilot study of the proper motion of stellar populations in the LMC from 2MASS and VISTA data
- Three-Dimensional Kinematics of Classical Cepheids
- The Radcliffe wave parameters from data on open star clusters