Thermo-Mechanical Adjustment after Impacts during Planetary Growth - ENS de Lyon - École normale supérieure de Lyon Access content directly
Journal Articles Geophysical Research Letters Year : 2007

Thermo-Mechanical Adjustment after Impacts during Planetary Growth

Julien Monteux
  • Function : Correspondent author
Nicolas Coltice
  • Function : Author
  • PersonId : 849405
Yanick Ricard
Fabien Dubuffet
  • Function : Author
  • PersonId : 849406

Abstract

The thermal evolution of planets during their growth is strongly influenced by impact heating. The temperature increase after a collision is mostly located next to the shock. For Moon to Mars size planets where impact melting is limited, the long term thermo-mechanical readjustment is driven by spreading and cooling of the heated zone. To determine the time and length scales of the adjustment, we developed a numerical model in axisymmetric cylindrical geometry with variable viscosity. We show that if the impactor is larger than a critical size, the spherical heated zone isothermally flattens until its thickness reaches a value for which motionless thermal diffusion becomes more effective. The thickness at the end of advection depends only on the physical properties of the impacted body. The obtained timescales for the adjustment are comparable to the duration of planetary accretion and depend mostly on the physical properties of the impacted body.
Fichier principal
Vignette du fichier
2007GL031635-text.pdf (148.56 Ko) Télécharger le fichier
2007GL031635-p01_orig.eps (1.06 Mo) Télécharger le fichier
2007GL031635-p02_orig.eps (1.73 Mo) Télécharger le fichier
2007GL031635-p03_orig.eps (138.55 Ko) Télécharger le fichier
2007GL031635-p04_orig.eps (1.26 Mo) Télécharger le fichier
Origin : Files produced by the author(s)
Format : Other
Format : Other
Format : Other
Format : Other

Dates and versions

ensl-00283314 , version 1 (29-05-2008)

Identifiers

Cite

Julien Monteux, Nicolas Coltice, Yanick Ricard, Fabien Dubuffet. Thermo-Mechanical Adjustment after Impacts during Planetary Growth. Geophysical Research Letters, 2007, 24, pp.1-5. ⟨10.1029/2007GL031635⟩. ⟨ensl-00283314⟩
547 View
275 Download

Altmetric

Share

Gmail Facebook Twitter LinkedIn More