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How do massive stars explode? Progress toward the answer is driven by increases in compute power.
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H.-T. Janka, “Explosion Mechanisms of Core-Collapse Supernovae,” Ann. Rev. Nuc. Par. Sci. , vol. 62, 407, Nov. 2012
2012
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C. D. Ott, E. Abdikamalov, P. Mösta, R. Haas, S. Drasco, E. P. O’Connor, C. Reisswig, C. A. Meakin, and E. Schnetter, “General-relativistic Simulations of Three-dimensional Core-collapse Supernovae,” Astrophys. J. , vol. 768, 115, May 2013
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A. W. Steiner, M. Hempel, and T. Fischer, “Core-collapse Supernova Equations of State Based on Neutron Star Observations,” Astrophys. J. , vol. 774, 17, Sep. 2013
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S. M. Couch, E. Chatzopoulos, W. D. Arnett, and F. X. Timmes, “The Three-dimensional Evolution to Core Collapse of a Massive Star,” Astrophys. J. Lett. , vol. 808, L21, Jul. 2015
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E. J. Lentz, S. W. Bruenn, W. R. Hix, A. Mezzacappa, O. E. B. Messer, E. Endeve, J. M. Blondin, J. A. Harris, P. Marronetti, and K. N. Yakunin, “Three-dimensional Core-collapse Supernova Simulated Using a 15 M ⊙
2015
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S. M. Couch and C. D. Ott, “The Role of Turbulence in Neutrino-driven Core-collapse Supernova Explosions,” Astrophys. J. , vol. 799, 5, Jan. 2015
2015
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P. Mösta, C. D. Ott, D. Radice, L. F. Roberts, R. Haas, and E. Schnetter, “A Large-Scale Dynamo and Magnetoturbulence in Rapidly Rotating Core-Collapse Supernovae,” Nature , vol. 528, no. 7582, pp. 376–379, Dec. 2015
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Later among the works it cites.
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2014
Cited alongside, same era.
A. Vlasenko, G. M. Fuller, and V. Cirigliano, “Neutrino quantum kinetics,” Phys. Rev. D. , vol. 89, no. 10, 105004, May 2014
2014
Cited alongside, same era.
K. Sumiyoshi, T. Takiwaki, H. Matsufuru, and S. Yamada, “Multi-dimensional Features of Neutrino Transfer in Core-collapse Supernovae,” Astrophys. J. Supp. Ser. , vol. 216, 5, Jan. 2015
2015
Cited alongside, same era.
2015
Cited alongside, same era.
T. Kuroda, T. Takiwaki, and K. Kotake, “A New Multi-energy Neutrino Radiation-Hydrodynamics Code in Full General Relativity and Its Application to the Gravitational Collapse of Massive Stars,” Astrophys. J. Supp. Ser. , vol. 222, 20, Feb. 2016
2016
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2016
Closest in time.
A. Mirizzi, I. Tamborra, H.-T. Janka, N. Saviano, K. Scholberg, R. Bollig, L. Hüdepohl, and S. Chakraborty, “Supernova neutrinos: production, oscillations and detection,” Nuovo Cimento Rivista Serie , vol. 39, pp. 1–112, 2016
2016
Closest in time.
D. Radice, C. D. Ott, E. Abdikamalov, S. M. Couch, R. Haas, and E. Schnetter, “Neutrino-driven Convection in Core-collapse Supernovae: High-resolution Simulations,” Astrophys. J. , vol. 820, 76, Mar. 2016
2016
Closest in time.