4.7 Article

Chemical evolution during gas-rich galaxy interactions

Journal

MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY
Volume 417, Issue 1, Pages 580-590

Publisher

WILEY-BLACKWELL
DOI: 10.1111/j.1365-2966.2011.19300.x

Keywords

galaxies: abundances; galaxies: evolution; galaxies: formation; galaxies: interactions

Funding

  1. Consejo Nacional de Investigaciones Cientificas y Tecnicas [PIP 2009/0305]
  2. Agencia Nacional de Promocion Cientifica y Tecnica [PICT 32342]
  3. Max Planck [245]
  4. Agence Nationale de la Recherche [ANR-08-BLAN-0274-01]
  5. Agence Nationale de la Recherche (ANR) [ANR-08-BLAN-0274] Funding Source: Agence Nationale de la Recherche (ANR)
  6. Direct For Mathematical & Physical Scien [0929822] Funding Source: National Science Foundation
  7. Direct For Mathematical & Physical Scien
  8. Division Of Astronomical Sciences [847477] Funding Source: National Science Foundation
  9. Division Of Astronomical Sciences [0929822] Funding Source: National Science Foundation

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We perform and analyse a set of galaxy interactions performed by using a self-consistent chemo-hydrodynamical model which includes star formation, supernova (SN) feedback and chemical evolution. In agreement with previous works, we find that tidally induced low-metallicity gas inflows dilute the central oxygen abundance and contribute to the flattening of the metallicity gradients. The tidally induced inflows trigger starbursts which increase the impact of Type II supernova (SN II) feedback injecting new chemical elements and driving galactic winds which modulate the metallicity distribution. Although alpha-enhancement in the central regions is detected as a result of the induced starbursts in agreement with previous works, our simulations suggest that this parameter can only provide a timing of the first pericentre mainly for non-retrograde encounters. In order to reproduce wet major mergers at low and high redshifts, we have run simulations with respectively 20 and 50 per cent of the disc in the form of gas. We find that the more gas-rich encounters behave similarly to the less rich ones, between the first and second pericentre, where low-metallicity gas inflows are triggered. However, the higher strength of the inflows triggered in the more gas-rich interactions produces larger metal dilution factors, which are modulated afterwards by the new chemical production by SN. We find that the more gas-rich interaction develops violent and clumpy star formation triggered by local instabilities all over the disc before the first pericentre, so that if these galaxies were observed at these early stages where no important tidally induced inflows have been able to be developed yet, they would tend to show an excess of oxygen. We find a global mean correlation of both the central abundances and the gradients with the strength of the star formation activity. However, the correlations are affected by orbital parameters, gas inflows and outflows, suggesting that it might be difficult to determine it from observations. Overall, our findings show that a consistent description of the gas dynamics and stellar evolution along the interactions is necessary to assess their effects on the chemical properties of the interstellar medium.

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