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Taking into account the rotation of mass-accreting white dwarfs (WDs) whose masses exceed the Chandrasekhar mass, we extend our new single degenerate model for the progenitors of Type Ia supernovae (SNe Ia), accounting for two types of…

Solar and Stellar Astrophysics · Physics 2015-06-05 Izumi Hachisu , Mariko Kato , Ken'ichi Nomoto

Upon formation, degenerate He core white dwarfs are surrounded by a radiative H-rich layer primarily supported by ideal gas pressure. In this Letter, we examine the effect of this H-rich layer on mass transfer in He+C/O double white dwarf…

Solar and Stellar Astrophysics · Physics 2015-06-15 Ken J. Shen , James Guillochon , Ryan J. Foley

Context: Although type Ia supernovae (SNe Ia) play a key role in astrophysics, the companions of the exploding carbon-oxygen white dwarfs (CO WDs) are still not completely identified. It has been suggested recently that a He-rich WD (a He…

Solar and Stellar Astrophysics · Physics 2017-10-25 Dongdong Liu , Bo Wang , Chengyuan Wu , Zhanwen Han

I find that Type Ia supernovae (SNe Ia) with bimodal nebular emission profiles occur almost exclusively in massive ($M_\star \gtrsim 10^{11}~M_\odot$) galaxies with low star-formation rates (SFR~$\lesssim 0.5~M_\odot$/yr). The bimodal…

High Energy Astrophysical Phenomena · Physics 2024-12-30 Michael A. Tucker

We investigate the quantity and composition of unburned material in the outer layers of three normal Type Ia supernovae (SNe Ia): 2000dn, 2002cr and 20 04bw. Pristine matter from a white dwarf progenitor is expected to be a mixture of…

Astrophysics · Physics 2009-11-11 G. H. Marion , P. Hoeflich , J. C. Wheeler , E. L. Robinson , C. L. Gerardy , W. D. Vacca

Type Ia supernovae (SNe Ia) are a critical tool for cosmology and galactic enrichment, yet the progenitor systems of normal SNe Ia remain a central puzzle. The long-debated single-degenerate (SD) channel, where a white dwarf (WD) accretes…

Solar and Stellar Astrophysics · Physics 2026-02-18 Amir Michaelis , Hagai B. Perets

One of the most important questions regarding the progenitor systems of Type Ia supernovae (SNe Ia) is whether mergers of two white dwarfs can lead to explosions that reproduce observations of normal events. Here we present a fully…

High Energy Astrophysical Phenomena · Physics 2015-06-03 R. Pakmor , M. Kromer , S. Taubenberger , S. A. Sim , F. K. Roepke , W. Hillebrandt

Models for Type Ia Supernovae (SNe Ia) are reviewed. It is shown that there are strong reasons to believe that most SNe Ia represent thermonuclear disruptions of C-O white dwarfs, when these white dwarfs reach the Chandrasekhar limit and…

Astrophysics · Physics 2007-05-23 Mario Livio

An attractive scenario for producing Type Ia supernovae (SNe Ia) is a double detonation, where detonation of an accreted helium layer triggers ignition of a C/O core. Whether or not such a mechanism can explain some or most SNe Ia depends…

High Energy Astrophysical Phenomena · Physics 2015-06-23 Anthony L. Piro

Type Ia supernovae (SNe Ia) arise from the thermonuclear explosion of carbon-oxygen white dwarfs. Though the uniformity of their light curves makes them powerful cosmological distance indicators, long-standing issues remain regarding their…

Using population synthesis, we study a double-degenerate (DD) scenario for SNe Ia, aiming to estimate the maximum possible contribution to the rate of SNe from this scenario and the dependence of the delay-time distribution (DTD) on it. We…

Solar and Stellar Astrophysics · Physics 2016-10-25 L. R. Yungelson , A. G. Kuranov

Using 2D and 3D simulation, we study the "robustness" of the double detonation scenario for Type Ia supernovae, in which a detonation in the helium shell of a carbon-oxygen white dwarf induces a secondary detonation in the underlying core.…

High Energy Astrophysical Phenomena · Physics 2015-06-15 Rainer Moll , Stanford E. Woosley

Binary stellar evolution has been studied as important pathway to initiate various transient events like supernovae (SNe). Although the common envelope (CE) in a binary, outcomes of the CE and conditions for the SN explosion during the CE…

Solar and Stellar Astrophysics · Physics 2021-07-16 Iminhaji Ablimit

In the single degenerate scenario for Type Ia supernova (SNeIa), a white dwarf (WD) must gain a significant amount of matter from a companion star. Because the accreted mass carries angular momentum, the WD is likely to achieve fast spin…

High Energy Astrophysical Phenomena · Physics 2015-05-27 R. Di Stefano , R. Voss , J. S. W. Claeys

I suggest the double-degenerate (DD) scenario with a merger-to-explosion delay (MED) time (the DD-MED scenario) of about 1-2 years to explain the rare properties of the recently analyzed type Ia supernova (SN Ia) SN 2020aeuh. The rare…

High Energy Astrophysical Phenomena · Physics 2025-09-15 Noam Soker

Merging white dwarfs are a possible progenitor of Type Ia supernovae (SNe Ia). While it is not entirely clear if and when an explosion is triggered in such systems, numerical models suggest that a detonation might be initiated before the…

High Energy Astrophysical Phenomena · Physics 2015-06-18 Rainer Moll , Cody Raskin , Daniel Kasen , Stan Woosley

Type Ia supernovae (SNe) occur when a white dwarf (WD) explodes via runaway thermonuclear burning. Till date, major uncertainties remain regarding the nature of the explosion mechanism and its observable signatures. In this work, we study…

High Energy Astrophysical Phenomena · Physics 2026-05-27 Soham Mandal , Parviz Ghavamian , Priyam Das , Ivo Rolf Seitenzahl , Shazrene Mohamed , Ashley J. Ruiter

The observed diversity in Type Ia supernovae (SNe Ia) -- the thermonuclear explosions of carbon-oxygen white dwarf stars used as cosmological standard candles -- is currently met with a variety of explosion models and progenitor scenarios.…

Context: Turbulent deflagrations of Chandrasekhar mass White Dwarfs are commonly used to model Type Ia Supernova explosions. In this context, rapid rotation of the progenitor star is plausible but has so far been neglected. Aims: The aim of…

High Energy Astrophysical Phenomena · Physics 2015-05-14 J. M. M. Pfannes , J. C. Niemeyer , W. Schmidt , C. Klingenberg