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Simplifying silicon burning: Application of quasi-equilibrium to (alpha) network nucleosynthesisWhile the need for accurate calculation of nucleosynthesis and the resulting rate of thermonuclear energy release within hydrodynamic models of stars and supernovae is clear, the computational expense of these nucleosynthesis calculations often force a compromise in accuracy to reduce the computational cost. To redress this trade-off of accuracy for speed, the authors present an improved nuclear network which takes advantage of quasi- equilibrium in order to reduce the number of independent nuclei, and hence the computational cost of nucleosynthesis, without significant reduction in accuracy. In this paper they will discuss the first application of this method, the further reduction in size of the minimal alpha network. The resultant QSE- reduced alpha network is twice as fast as the conventional alpha network it replaces and requires the tracking of half as many abundance variables, while accurately estimating the rate of energy generation. Such reduction in cost is particularly necessary for future generation of multi-dimensional models for supernovae.
Document ID
19990041729
Acquisition Source
Goddard Space Flight Center
Document Type
Other
Authors
Hix, W. R.
(Oak Ridge National Lab. TN United States)
Thielemann, F.-K.
(Oak Ridge National Lab. TN United States)
Khokhlov, A. M.
(Naval Research Lab. Washington, DC United States)
Wheeler, J. C.
(Texas Univ. Austin, TX United States)
Date Acquired
September 6, 2013
Publication Date
December 31, 1997
Subject Category
Astrophysics
Report/Patent Number
CONF-971208
DE98-005053
ORNL/CP-97176
Report Number: CONF-971208
Report Number: DE98-005053
Report Number: ORNL/CP-97176
Funding Number(s)
OTHER: NSF AST-95-28110
CONTRACT_GRANT: NAG5-2888
OTHER: SNSF-20-47252,96
CONTRACT_GRANT: DE-AC05-96OR-22464
CONTRACT_GRANT: DE-FG02-96ER-40983
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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