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Type Ia supernovae are bright stellar explosions distinguished by standardizable light curves that allow for their use as distance indicators for cosmological studies.
Nuclear Quasi-Equilibrium during Silicon Burning
D. Bodansky, D. D. Clayton, and W. A. Fowler · 1968
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The Explosive Burning of Oxygen and Silicon
S. E. Woosley, W. D. Arnett, and D. D. Clayton · 1973
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The Conditions for Establishment of Nuclear Statistical Equilibrium in Stellar Interiors
V. S. Imshennik, S. S. Filippov, and A. M. Khokhlov · 1981
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Nuclear-reaction kinetics in a quasiequilibrium approximation
A. M. Khokhlov · 1981
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Type I supernovae. I - analytic solutions for the early part of the light curve
W. D. Arnett · 1982
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Deflagration-Front Structure in a Degenerate Carbon Core
A. M. Khokhlov · 1983
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Carbon ignition in a rapidly accreting degenerate dwarf - A clue to the nature of the merging process in close binaries
K. Nomoto and I. Iben, Jr · 1985
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The final stages of evolution of cold, mass-accreting white dwarfs
M. Hernanz, J. Isern, R. Canal, J. Labay, and R. Mochkovitch · 1988
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Nucleosynthesis in SNIa
E. Bravo, J. Isern, R. Canal, and J. Labay · 1990
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Delayed detonation model for type IA supernovae
A. M. Khokhlov · 1991
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The conductive propagation of nuclear flames. I - Degenerate C + O and O + NE + MG white dwarfs
F. X. Timmes and S. E. Woosley · 1992
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The absolute magnitudes of type Ia supernovae
M. M. Phillips · 1993
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Scale invariance in turbulent front propagation
A. Pocheau · 1994
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Propagation of turbulent flames in supernovae
A. M. Khokhlov · 1995
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Turbulent Nuclear Flames in Type IA Supernovae
J. C. Niemeyer and W. Hillebrandt · 1995
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Explosion Models for Type IA Supernovae: A Comparison with Observed Light Curves, Distances, H 0, and Q 0
P. Höflich and A. Khokhlov · 1996
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Clues to Type IA SN progenitors from degenerate carbon ignition models
E. Bravo, A. Tornambe, I. Dominguez, and J. Isern · 1996
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Optical spectra of supernovae
A. V. Filippenko · 1997
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Paramesh: A parallel adaptive mesh refinement community toolkit
P. MacNeice, C. Olson, K. M. Mobarry, R. de Fainchtein, and C. Packer · 1999
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Nucleosynthesis in Chandrasekhar mass models for type Ia supernovae and constraints on progenitor systems and burning-front propagation
K. Iwamoto, F. Brachwitz, K. Nomoto, N. Kishimoto, H. Umeda, W. R. Hix, and F. Thielemann · 1999
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Type Ia supernova explosion models
W. Hillebrandt and J. C. Niemeyer · 2000
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The physics of type Ia supernova light curves. I. analytic results and time dependence
P. A. Pinto and R. G. Eastman · 2000
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FLASH: An adaptive mesh hydrodynamics code for modeling astrophysical thermonuclear flashes
B. Fryxell, K. Olson, P. Ricker, F. X. Timmes, M. Zingale, D. Q. Lamb, P. MacNeice, R. Rosner, J. W. Truran, and H. Tufo · 2000
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High-performance reactive fluid flow simulations using adaptive mesh refinement on thousands of processors
A. C. Calder, B. C. Curtis, L. J. Dursi, B. Fryxell, G. Henry, P. MacNeice, K. Olson, P. Ricker, R. Rosner, F. X. Timmes, H. M. Tufo, J. W. Truran, and M. Zingale · 2000
Cited alongside, same era.
A thickened flame model for large eddy simulations of turbulent premixed combustion
O. Colin, F. Ducros, D. Veynante, and T. Poinsot · 2000
Cited alongside, same era.
Paramesh: A parallel adaptive mesh refinement community toolkit
P. MacNeice, C. Olson, K. M. Mobarry, R. de Fainchtein, and C. Packer · 2000
Cited alongside, same era.
The role of electron captures in Chandrasekhar-mass models for type Ia supernovae
F. Brachwitz, D. J. Dean, W. R. Hix, K. Iwamoto, K. Langanke, G. Martínez-Pinedo, K. Nomoto, M. R. Strayer, F. Thielemann, and H. Umeda · 2000
Cited alongside, same era.
Constraints on the progenitors of type Ia supernovae and implications for the cosmological equation of state
I. Domínguez, P. Höflich, and O. Straniero · 2001
Cited alongside, same era.
Flame Evolution During Type Ia Supernovae and the Deflagration Phase in the Gravitationally Confined Detonation Scenario
D. M. Townsley, A. C. Calder, S. M. Asida, I. R. Seitenzahl, F. Peng, N. Vladimirova, D. Q. Lamb, and J. W. Truran · 2007
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The Laminar Flame Speedup by 22
D. A. Chamulak, E. F. Brown, and F. X. Timmes · 2007
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Supernovae in Early-Type Galaxies: Directly Connecting Age and Metallicity with Type Ia Luminosity
J. S. Gallagher, P. M. Garnavich, N. Caldwell, R. P. Kirshner, S. W. Jha, W. Li, M. Ganeshalingam, and A. V. Filippenko · 2008
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Low Mach Number Modeling of Type IA Supernovae. IV. White Dwarf Convection
M. Zingale, A. S. Almgren, J. B. Bell, A. Nonaka, and S. E. Woosley · 2009
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The Local Hosts of Type Ia Supernovae
J. D. Neill, M. Sullivan, D. A. Howell, A. Conley, M. Seibert, D. C. Martin, T. A. Barlow, K. Foster, P. G. Friedman, P. Morrissey, S. G. Neff, D. Schiminovich, T. K. Wyder, L. Bianchi, J. Donas, T. M. Heckman, Y.-W. Lee, B. F. Madore, B. Milliard, R. M. Rich, and A. S. Szalay · 2009
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Rate tables for the weak processes of pf-shell nuclei in stellar environments
K. Langanke and G. Martínez-Pinedo · 2001
Cited alongside, same era.
Timescale Stretch Parameterization of Type Ia Supernova B-Band Light Curves
G. Goldhaber, D. E. Groom, A. Kim, G. Aldering, P. Astier, A. Conley, S. E. Deustua, R. Ellis, S. Fabbro, A. S. Fruchter, A. Goobar, I. Hook, M. Irwin, M. Kim, R. A. Knop, C. Lidman, R. McMahon, P. E. Nugent, R. Pain, N. Panagia, C. R. Pennypacker, S. Perlmutter, P. Ruiz-Lapuente, B. Schaefer, N. A. Walton, and T. York · 2001
Cited alongside, same era.
On validating an astrophysical simulation code
A. C. Calder, B. Fryxell, T. Plewa, R. Rosner, L. J. Dursi, V. G. Weirs, T. Dupont, H. F. Robey, J. O. Kane, B. A. Remington, R. P. Drake, G. Dimonte, M. Zingale, F. X. Timmes, K. Olson, P. Ricker, P. MacNeice, and H. M. Tufo · 2002
Cited alongside, same era.
A power-law flame wrinkling model for les of premixed turbulent combustion part i: non-dynamic formulation and initial tests
F. Charlette, C. Meneveau, and D. Veynante · 2002
Cited alongside, same era.
On variations in the peak luminosity of type Ia supernovae
F. X. Timmes, E. F. Brown, and J. W. Truran · 2003
Cited alongside, same era.
Carbon Ignition in Type Ia Supernovae: An Analytic Model
S. E. Woosley, S. Wunsch, and M. Kuhlen · 2004
Cited alongside, same era.
Spectral Signatures of Gravitationally Confined Thermonuclear Supernova Explosions
D. Kasen and T. Plewa · 2005
Cited alongside, same era.
The Effect of Progenitor Age and Metallicity on Luminosity and 56
D. A. Howell, M. Sullivan, E. F. Brown, A. Conley, D. LeBorgne, E. Y. Hsiao, P. Astier, D. Balam, C. Balland, S. Basa, R. G. Carlberg, D. Fouchez, J. Guy, D. Hardin, I. M. Hook, R. Pain, K. Perrett, C. J. Pritchet, N. Regnault, S. Baumont, J. LeDu, C. Lidman, S. Perlmutter, N. Suzuki, E. S. Walker, and J. C. Wheeler · 2009
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Prompt Ia Supernovae are Significantly Delayed
C. Raskin, E. Scannapieco, J. Rhoads, and M. Della Valle · 2009
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Evaluating Systematic Dependencies of Type Ia Supernovae: The Influence of Progenitor 22
D. M. Townsley, A. P. Jackson, A. C. Calder, D. A. Chamulak, E. F. Brown, and F. X. Timmes · 2009
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Nuclear statistical equilibrium for Type Ia supernova simulations
I. R. Seitenzahl, D. M. Townsley, F. Peng, and J. W. Truran · 2009
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Nearby Supernova Factory Observations of SN 2007if: First Total Mass Measurement of a Super-Chandrasekhar-Mass Progenitor
R. A. Scalzo, G. Aldering, P. Antilogus, C. Aragon, S. Bailey, C. Baltay, S. Bongard, C. Buton, M. Childress, N. Chotard, Y. Copin, H. K. Fakhouri, A. Gal-Yam, E. Gangler, S. Hoyer, M. Kasliwal, S. Loken, P. Nugent, R. Pain, E. Pécontal, R. Pereira, S. Perlmutter, D. Rabinowitz, A. Rau, G. Rigaudier, K. Runge, G. Smadja, C. Tao, R. C. Thomas, B. Weaver, and C. Wu · 2010
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The Exceptionally Luminous Type Ia Supernova 2007if
F. Yuan, R. M. Quimby, J. C. Wheeler, J. Vinkó, E. Chatzopoulos, C. W. Akerlof, S. Kulkarni, J. M. Miller, T. A. McKay, and F. Aharonian · 2010
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Spectropolarimetry of Extremely Luminous Type Ia Supernova 2009dc: Nearly Spherical Explosion of Super-Chandrasekhar Mass White Dwarf
M. Tanaka, K. S. Kawabata, M. Yamanaka, K. Maeda, T. Hattori, K. Aoki, K. Nomoto, M. Iye, T. Sasaki, P. A. Mazzali, and E. Pian · 2010
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On Variations of the Brightness of Type Ia Supernovae with the Age of the Host Stellar Population
B. K. Krueger, A. P. Jackson, D. M. Townsley, A. C. Calder, E. F. Brown, and F. X. Timmes · 2010
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The Ages of Type Ia Supernova Progenitors
T. D. Brandt, R. Tojeiro, É. Aubourg, A. Heavens, R. Jimenez, and M. A. Strauss · 2010
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Evaluating Systematic Dependencies of Type Ia Supernovae: The Influence of Deflagration to Detonation Density
A. P. Jackson, A. C. Calder, D. M. Townsley, D. A. Chamulak, E. F. Brown, and F. X. Timmes · 2010
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Sub-grid scale combustion models for large eddy simulation of unsteady premixed flame propagation around obstacles
Valeria Di Sarli, Almerinda Di Benedetto, and Gennaro Russo · 2010
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Metallicity as a Source of Dispersion in the SNIa Bolometric Light Curve Luminosity-Width Relationship
E. Bravo, I. Domínguez, C. Badenes, L. Piersanti, and O. Straniero · 2010
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The Role of Variations of Central Density of White Dwarf Progenitors upon Type IA Supernovae
R. Fisher, D. Falta, G. Jordan, and D. Lamb · 2010
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Secondary Parameters of Type Ia Supernova Light Curves
P. Höflich, K. Krisciunas, A. M. Khokhlov, E. Baron, G. Folatelli, M. Hamuy, M. M. Phillips, N. Suntzeff, L. Wang, and NSF07-SNIa Collaboration · 2010
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Evaluating systematic dependencies of type ia supernovae
A. C. Calder, B. K. Krueger, A. P. Jackson, D. M. Townsley, F. X. Timmes, E. F. Brown, and D. A. Chamulak · 2011
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Type Ia supernova diversity: white dwarf central density as a secondary parameter in three-dimensional delayed detonation models
I. R. Seitenzahl, F. Ciaraldi-Schoolmann, and F. K. Röpke · 2011
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Nucleosynthesis During a Deflagration Detonation Transition Supernova Type Ia
D. M. Townsley, F. X. Timmes, A. P. Jackson, A. C. Calder, and E. F. Brown · 2012
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