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Evaluating galactic habitability using high-resolution cosmological simulations of galaxy formation

Published online by Cambridge University Press:  29 January 2016

Duncan Forgan*
Affiliation:
Scottish Universities Physics Alliance (SUPA), School of Physics and Astronomy, University of St Andrews, KY16 9SS, UK
Pratika Dayal
Affiliation:
Department of Physics, Institute for Computational Cosmology, University of Durham, South Road, Durham DH1 3LE, UK
Charles Cockell
Affiliation:
UK Centre for Astrobiology, School of Physics and Astronomy, University of Edinburgh, Scotland
Noam Libeskind
Affiliation:
Leibniz-Institute for Astrophysics, Potsdam, An der Sternwarte 16, Potsdam 14482, Germany
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Abstract

We present the first model that couples high-resolution simulations of the formation of local group galaxies with calculations of the galactic habitable zone (GHZ), a region of space which has sufficient metallicity to form terrestrial planets without being subject to hazardous radiation. These simulations allow us to make substantial progress in mapping out the asymmetric three-dimensional GHZ and its time evolution for the Milky Way (MW) and Triangulum (M33) galaxies, as opposed to works that generally assume an azimuthally symmetric GHZ. Applying typical habitability metrics to MW and M33, we find that while a large number of habitable planets exist as close as a few kiloparsecs from the galactic centre, the probability of individual planetary systems being habitable rises as one approaches the edge of the stellar disc. Tidal streams and satellite galaxies also appear to be fertile grounds for habitable planet formation. In short, we find that both galaxies arrive at similar GHZs by different evolutionary paths, as measured by the first and third quartiles of surviving biospheres. For the MW, this interquartile range begins as a narrow band at large radii, expanding to encompass much of the Galaxy at intermediate times before settling at a range of 2–13 kpc. In the case of M33, the opposite behaviour occurs – the initial and final interquartile ranges are quite similar, showing gradual evolution. This suggests that Galaxy assembly history strongly influences the time evolution of the GHZ, which will affect the relative time lag between biospheres in different galactic locations. We end by noting the caveats involved in such studies and demonstrate that high-resolution cosmological simulations will play a vital role in understanding habitability on galactic scales, provided that these simulations accurately resolve chemical evolution.

Information

Type
Research Article
Copyright
Copyright © Cambridge University Press 2016 
Figure 0

Fig. 1. The gas distribution of the Local Group in the CLUES simulations on large scales (left picture, about 2 Mpc h−1 across, viewed from a distance of 3.3 Mpc h−1) and the gas disks of the three main galaxies (right panels, about 50 kpc h−1 across, from a distance of 250 kpc h−1). For the zoomed pictures the colour mapping is shifted to higher densities (factor 10°.5) in order to enhance the spiral arm features of the gas disks. From the CLUES project, image courtesy of K. Riebe.

Figure 1

Fig. 2. The physical properties of the M33 galaxy. We plot the local average stellar metallicity (top left), the local average star formation rate (top right) and the number density of stars (bottom left) at three instances in the simulation, and the age-metallicity relation for all stars in the simulation (bottom right) at z = 0.

Figure 2

Fig. 3. The evolution of Nsurvive in the M33 galaxy. The 2D binned value of Nsurvive is shown for the xy plane (left) and xz plane (right).

Figure 3

Fig. 4. Left: The axial distributions of surviving planets in the disc of the M33 galaxy. In each snapshot, the number of surviving planets is binned along the x, y and z axes. The strong peak in the z-curve between –10 and –5 kpc is due to the presence of a satellite orbiting above the galactic plane. Right: the radial distribution of surviving planets.

Figure 4

Fig. 5. As Fig. 2, but for the Milky Way.

Figure 5

Fig. 6. As Fig. 3, but for the Milky Way.

Figure 6

Fig. 7. As Fig. 4, but for the Milky Way.

Figure 7

Table 1. The first and third quartiles (Q1 and Q3) of Nsurvive as a function of radius for both galaxies