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Spirals in galaxies
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Spirals in galaxies have long been thought to be caused by gravitational instability in the stellar component of the disk, but discerning the precise mechanism had proved elusive. Tidal interactions, and perhaps bars, may provoke some spiral responses, but spirals in many galaxies must be self-excited. We survey the relevant observational data and aspects of disk dynamical theory. The origin of the recurring spiral patterns in simulations of isolated disk galaxies has recently become clear and it is likely that the mechanism is the same in real galaxies, although evidence to confirm this supposition is hard to obtain. As transient spiral activity increases random motion, the patterns must fade over time unless the disk also contains a dissipative gas component. Continuing spiral activity alters the structure of the disks in other ways: reducing metallicity gradients and flattening rotation curves are two of the most significant. The overwhelming majority of spirals in galaxies have two- or three-fold rotational symmetry, indicating that the cool, thin disk component is massive. Spirals in simulations of halo-dominated disks instead manifest many arms, and consequently do not capture the expected full spiral-driven evolution. We conclude by identifying areas where further work is needed.
Forward citations
Cited by 2 Pith papers
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Invariant manifolds in barred galaxy simulations. III. Self-regulated weakening of strong spiral arms
Strong self-gravitating spirals displace Lagrangian points by 20–50°, reconfigure invariant manifolds into competing in/out flows, and thereby self-weaken on ~200 Myr timescales before the standard manifold geometry recovers.
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Morphological Classification of Galaxies
This is a review of galaxy morphology classification, providing an updated crosswalk of terminologies, not a new scientific result.
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