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  5. The Applications of the Tracer Particle Method to Multi-Dimensional Supernova Simulations
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The Applications of the Tracer Particle Method to Multi-Dimensional Supernova Simulations

Date Issued
August 1, 2008
Author(s)
Lee, Ching-Tsai
Advisor(s)
Mike W. Gudiry
Additional Advisor(s)
John Quinn
Raphael Hix
Carl Sundberg
Kate Jones
Link to full text
http://etd.utk.edu/2008/August2008Dissertations/LeeChingTsai.pdf
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/25848
Abstract

A new tracer particle implementation has been developed for the 2D supernova code ”CHIMERA”. 2D supernova simulations have been performed for a wide range of progenitors, between 10 and 25 solar mass. In the case of the Heger12 model, we have obtained a successful explosion. Analysis of the tracer particle data generated by supernova simulations reveals the aspherical geometry of the ejecta. Using the hydrodynamic trajectories provided by the tracer particles, we have performed the nucleosynthesis calculations in the post processing approximation, including the effects of neutrino captures, to understand the nucleosynthesis consequences of these models.

Disciplines
Nuclear
Physical Sciences and Mathematics
Physics
Degree
Doctor of Philosophy
Major
Physics
Embargo Date
December 1, 2011
File(s)
Thumbnail Image
Name

LeeChingTsai.pdf

Size

3.7 MB

Format

Adobe PDF

Checksum (MD5)

0dabc6383a05837b1521681fdd36c1a9


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