A Theory and Model of Molten Salt Reactor Xenon Behavior After the Solubility Limit

Author:

Price Terry J.1,Chvala Ondrej2

Affiliation:

1. Faculty of Energy Systems and Nuclear Science, Ontario Technical University (OnTekU), Oshawa, ON L1G 0C5, Canada

2. Department of Nuclear Engineering, University of Tennessee Knoxville (UTK), Knoxville, TN 37916

Abstract

Abstract Due to the circulating nature of the fuel, there is a qualitative difference between xenon behavior in a molten salt reactor (MSR) compared to a solid fuel reactor. Therefore, the equations that describe 135Xe behavior in a molten salt reactor must be formulated differently. Prior molten salt reactor xenon models have focused on behavior below a solubility limit in which the 135Xe is partially dissolved in the fuel salt. It is foreseeable that a molten salt reactor may operate with a concentration of gas dissolved in the salt sufficiently high such that no further gas may dissolve in the fuel salt. This paper introduces a theory of molten salt reactor xenon behavior for a reactor operating above the solubility limit. A model was developed based on this theory and analyses performed are discussed. Results indicate: (1) steady-state xenon poisoning is not monotonic with respect to gas egress rate, (2) a increase in gas ingress rate leads to a characteristic increase which is followed by a new steady-state in xenon poisoning, and (3) given a sufficient rate of gas egress, it is possible to remove the iodine pit behavior.

Publisher

ASME International

Subject

Nuclear Energy and Engineering,Radiation

Reference26 articles.

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2. The Aircraft Reactor Experiment—Physics;Nucl. Sci. Eng.,1957

3. A Zero Power Reflector-Moderated Reactor Experiment at Elevated Temperature,1958

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