123-321 Models of Classical Novae
Jordi Jose (1,2), Steven N. Shore (3), Jordi Casanova (2) ((1) UPC, Barcelona, (2) IEEC Barcelona, (3) U Pisa)

TL;DR
This study introduces a hybrid 1-D and 3-D simulation approach to model classical novae, revealing more massive envelopes and more energetic outbursts consistent with observed metallicity enhancements.
Contribution
It develops a novel methodology combining 1-D and 3-D simulations to better model nova outbursts and envelope enrichment.
Findings
More massive envelopes than previous models.
Higher peak temperatures and ejected masses.
Metallicity enhancements match observations.
Abstract
High-resolution spectroscopy has revealed large concentrations of CNO and sometimes other intermediate-mass elements in the shells ejected during nova outbursts, suggesting that the solar composition material transferred from the secondary mixes with the outermost layers of the underlying white dwarf during the thermonuclear runaway. Multidimensional simulations have shown that Kelvin-Helmholtz instabilities provide self-enrichment of the accreted envelope with material from the outermost layers of the white dwarf, at levels that agree with observations. However, the Eulerian and time-explicit nature of most multidimensional codes used to date and the overwhelming computational load have limited their applicability, and no multidimensional simulation has been conducted for a full nova cycle. This paper explores a new methodology that combines 1-D and 3-D simulations. The early stages of…
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