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Microscale Heat Conduction Models and Doppler Feedback
Author(s) -
Ayman I. Hawari,
Abderrafi M. Ougouag
Publication year - 2015
Language(s) - English
Resource type - Reports
DOI - 10.2172/1169924
Subject(s) - microscale chemistry , thermal conduction , nuclear engineering , isotropy , heat transfer , materials science , mechanics , graphite , doppler effect , environmental science , physics , engineering , optics , composite material , mathematics education , mathematics , astronomy
The objective of this project is to establish an approach for providing the fundamental input that is needed to estimate the magnitude and time-dependence of the Doppler feedback mechanism in Very High Temperature reactors. This mechanism is the foremost contributor to the passive safety of gas-cooled, graphite-moderated high temperature reactors that use fuel based on Tristructural-Isotropic (TRISO) coated particles. Therefore, its correct prediction is essential to the conduct of safety analyses for these reactors. Since the effect is directly dependent on the actual temperature reached by the fuel during transients, the underlying phenomena of heat deposition, heat transfer and temperature rise must be correctly predicted. To achieve the above objective, this project will explore an approach that accounts for lattice effects as well as local temperature variations and the correct definition of temperature and related local effects.

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