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Development of Sodium Voiding Model for the KALIMER Analysis  

Chang, Won-Pyo (Korea Atomic Energy Research Institute)
Dohee Hahn (Korea Atomic Energy Research Institute)
Publication Information
Nuclear Engineering and Technology / v.34, no.4, 2002 , pp. 286-300 More about this Journal
Abstract
An algorithm for the sodium boiling model has been developed for calculation of the void reactivity feedback as well as the fuel and cladding temperatures in the KALIMER core after onset of sodium boiling. Modeling of sodium boiling in liquid metal reactors using sodium as a coolant is necessary because of phenomenon difference comparing with that observed generally in light water reactor systems. The applied model to the algorithm is the multiple-bubble slug ejection model. It allows a finite number of bubbles in a channel at any time. Voiding is assumed to result from formation of bubbies that (ill the whole cross section of the coolant channel except for the liquid film left on the cladding surface. The vapor pressure, currently, is assumed to be uniform within a bubble The present study is focused on not only demonstration of the vapor bubble behavior predicted by the developed model, but also confirmation of a qualitative acceptance for the model. As a result, the model can represent important phenomena in the sodium boiling, but it is found that further effort is also needed for its completition.
Keywords
sodium boiling; KALIMER; SSC-K; HCDA; reactivity feedback;
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