A scenario study on the transition to a closed nuclear fuel cycle using the nuclear energy system modelling application package (NESAPP)

Author:

Andrianov Andrei A.,Andrianova Olga N.,Kuptsov Ilya S.ORCID,Svetlichny Leonid I.,Utianskaya Tatyana V.

Abstract

The paper presents the results of a case study on evaluating performance and sustainability metrics for Russian nuclear energy deployment scenarios with thermal and sodium-cooled fast reactors in a closed nuclear fuel cycle. Ten possible scenarios are considered which differ in the shares of thermal and sodium-cooled fast reactors, including options involving the use of mixed uranium-plutonium oxide fuel in thermal reactors. The evolution of the following performance and sustainability metrics is estimated for the period from 2020 to 2100 based on the considered assumptions: annual and cumulative uranium consumption, needs for uranium enrichment capacities, fuel fabrication and reprocessing capacities, spent fuel stocks, radioactive wastes, amounts of plutonium in the nuclear fuel cycle, amounts of accumulated depleted uranium, and the levelised electricity generation cost. The results show that the sustainability of the Russian nuclear energy system can be significantly enhanced through the intensive deployment of sodium-cooled fast reactors and the transition to a closed nuclear fuel cycle. The authors have highlighted some issues for further considerations, which will lead to more rigorous conclusions regarding the preferred options for the development of the national nuclear energy system.

Publisher

EDP Sciences

Subject

General Medicine

Reference10 articles.

1. Two-component nuclear power system with thermal and fast reactors in a closed nuclear fuel cycle, edited by Ponomarev-Stepnoy N.N. (Tekhnosfera Publ., Moscow, 2016) (in Russian), 160 p

2. Optimization models of a two-component nuclear energy system with thermal and fast reactors in a closed nuclear fuel cycle

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