1995AIP conference proceedingsRequires access

Waste transmutation with minimal fuel cycle long-term risk

I. Slessarev, M. Salvatores, Mikio Uematsu

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Abstract

Hybrid systems (source-driven subcritical reactors) are investigated at CEA, mainly from a conceptual point of view, in order to assess their potential to transmute radioactive wastes (mainly long-lived fission products, LLFP) and their potential to insure a minimal long-term radiological risk related both to the fuel inventory inside the system and to the full fuel cycle (mass flows, reprocessing transport, waste disposal). The physics of these systems has been explored and work is in progress both in the field of basic data and INC code validation, in the frame of international collaborations and in the field of conceptual design studies. The most interesting feature of subcritical source-driven system is related to the possibility to obtain an "excess" of neutrons per fission, which can be used to reduce the long-term radiological risk. A specific example will be discussed here.

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What this paper is about

Hybrid systems (source-driven subcritical reactors) are investigated at CEA, mainly from a conceptual point of view, in order to assess their potential to transmute radioactive wastes (mainly long-lived fission products, LLFP) and their potential to insure a minimal long-term radiological risk related both to the fuel inventory inside the system and to the full fuel cycle (mass flows, reprocessing transport, waste disposal). The physics of these systems has been explored and work is in progress both in the field of basic data and INC code validation, in the frame of international collaborations and in the field of conceptual design studies. The most interesting feature of subcritical source-driven system is related to the possibility to obtain an "excess" of neutrons per fission, which can be used to reduce the long-term radiological risk. A specific example will be discussed here.

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Available abstract

Hybrid systems (source-driven subcritical reactors) are investigated at CEA, mainly from a conceptual point of view, in order to assess their potential to transmute radioactive wastes (mainly long-lived fission products, LLFP) and their potential to insure a minimal long-term radiological risk related both to the fuel inventory inside the system and to the full fuel cycle (mass flows, reprocessing transport, waste disposal). The physics of these systems has been explored and work is in progress both in the field of basic data and INC code validation, in the frame of international collaborations and in the field of conceptual design studies. The most interesting feature of subcritical source-driven system is related to the possibility to obtain an "excess" of neutrons per fission, which can be used to reduce the long-term radiological risk. A specific example will be discussed here.

Key concepts: Nuclear transmutation, Term (time), Fuel cycle, Environmental science, Nuclear engineering, Waste management, Engineering, Physics

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