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Anagha A G

Publications and source records attributed to Anagha A G.

2 recordsLinked to original sources

Co-evolution of bar and spiral arms in TNG50 simulations using Information Theory

Using Information Theory, we investigate the co-evolution of bars and spiral arms in barred-spiral galaxies from the cosmological magneto-hydrodynamic Illustris TNG50 simulations. We first calculate Mutual Information (MI) between a structural or kinematic parameter of the bar (bar strength $A_{2bar}$, bar length $r_{bar}$, bar pattern speed $Ω$) and that of a spiral arm (spiral strength $A_{2spiral}$, spiral arm pitch angle $Ψ$). We calculate MI in two different galaxy samples: (i) one forming bars before spirals (ii) other forming spirals before bars. We note, spirals form immediately after bars in the first sample, whereas bars form 1.7 Gyrs after spirals in the second. We find a high mean MI value in each of these samples (0.4 - 0.5), and in the combined sample (0.4-0.8), confirming a fair degree of association of the bar and the spiral arm. To identify whether the bar or the spiral arm effectively drives their co-evolution, we calculate the Transfer Entropy (TE) (bar-to-spiral TE, spiral-to-bar TE), from the time series data of each of the above bar-spiral parameter pairs. We find that the median bar-to-spiral TE and spiral-to-bar TE values vary between $ 0.33$ and $ 0.42$ for each galaxy sample, comparable to those of the combined sample. A similar trend was observed in our calculated Liang information flow rates. Our novel approach may possibly indicate that the bar and the spiral arm regulate their co-evolution on an equal footing.

astro-ph.GA

Are purely gaseous bars in dwarf-irregulars a myth?

About two-thirds of the galactic disks exhibit a central ellipsoidal stellar component called the bar, with or without a gaseous counterpart. However, there are a few dwarf galaxies with purely gaseous bars: NGC3741, NGC2915 and DDO168. This is a puzzle as gas is a collisional medium, and a gaseous bar is expected to be ripped off by shock waves. We study the formation of gaseous bars in these galaxies by constructing dynamical models constrained by stellar photometry and HI observations already available. We first analytically study the dynamical stability of the galactic disks against global $m=2$ perturbations. Our results indicate that the stellar and the gas disks are moderately unstable against these bar modes. Using N-body + hydrodynamical simulations employing $RAMSES$, we next find that a purely gaseous bar is formed in an oblate dark matter halo of vertical-to-planar axes ratio $c/a = 0.6 - 0.8$, with a relatively high-spin parameter $Λ= 0.04 - 0.07$, which survives for more than ten dynamical times. Further, the low values of our calculated Mach numbers $M=2-6$ of the gaseous medium comply with the survival of the gaseous bars, unaffected by shock waves. Interestingly, our simulations show the formation of a tiny stellar bar in each case. However, the temporal evolution of the change in angular momentum $L_z$ of the different disk components indicates the exchange of $L_z$ between the gas disk and the dark matter halo only; the $L_z$ of the stellar disk remained unchanged, indicating a weak stellar bar.

astro-ph.GA