Published 2002 | Version v1
Computer medium

CEA programme on gas cooled reactors

  • 1. CEA - Comissariat a l'Energie Atomique (France). Div. de l'Energie Nucleaire

Description

Future nuclear energy systems studies conducted by the CEA aim at investigating and developing promising technologies for future reactors, fuels and fuel cycles, for nuclear power to play a major part in sustainable energy policies. Reactors and fuel cycles are considered as integral parts of a nuclear system to be optimised as a whole. Major goals assigned to future nuclear energy systems are the following: reinforced economic competitiveness with other electricity generation means, with a special emphasis on reducing the investment cost; enhanced reliability and safety, through an improved management of reactor operation in normal and abnormal plant conditions; minimum production of long lived radioactive waste; resource saving through an effective and flexible use of the available resources of fissile and fertile materials; enhanced resistance to proliferation risks. The three latter goals are essential for the sustainability of nuclear energy in the long term. Additional considerations such as the potentialities for other applications than electricity generation (co-generation, production of hydrogen, sea water desalination) take on an increasing importance. Sustainability goals call for fast neutron spectra (to transmute nuclear waste and to breed fertile fuel) and for recycling actinides from the spent fuel (plutonium and minor actinides). New applications and economic competitiveness call for high temperature technologies (850 deg C), that afford high conversion efficiencies and hence less radioactive waste production and discharged heat. These orientations call for breakthroughs beyond light water reactors. Therefore, as a result of a screening review of candidate technologies, the CEA has selected an innovative concept of high temperature gas cooled reactor with a fast neutron spectrum, robust refractory fuel, direct conversion with a gas turbine, and integrated on-site fuel cycle as a promising system for a sustainable energy development. This objective partly builds on the past experience of the CEA on gas cooled reactors (UNGG, HTR) and on the current effort to revive and update High Temperature Reactor technologies to support the development of modular helium cooled reactors (∼300 MWe) by Framatome-ANP and international partners. In this context, the CEA decided to focus prospective R and D work on the development of a consistent set of gas cooled nuclear systems ranging from medium term reactor projects for electricity generation and other applications (robust and secure export model, process heat, hydrogen production at very high temperature, plutonium burning) to a longer term vision of sustainable nuclear systems using fast neutrons with a closed and integrated fuel cycle. This range of gas cooled nuclear systems covers a wide variety of high temperature applications as well as a broad range of fuel cycles, including synergistic fuel cycles with light water reactors (i.e. burning plutonium and possibly also minor actinides from PWR spent fuels). A specific research and development programme is being currently implemented to support the development of this consistent set of gas cooled systems. The major emphasis is put on fuel particles re-fabrication and possible adaptations to fast neutrons, on high temperature materials, high temperature systems technology, and compact spent fuel processing and re-fabrication processes. This programme anticipates the construction of large experimental facilities in the next decade, such as an He integral test loop (2007), a technology testing reactor and a lab scaled integrated fuel cycle (2012). A substantial effort is also invested in the validation of computational tools and procedures for feasibility and performance studies. Strong connections with fundamental research (nuclear physics, materials science, nuclear chemistry) are essential to improve the modelling capability and to achieve effective breakthroughs for the development of high temperature and high irradiation damage resisting materials. (author)

Part of:
Proceedings of the INAC 2002: International nuclear atlantic conference; 13. Brazilian national meeting on reactor physics and thermal hydraulics; 6. Brazilian national meeting on nuclear applications

Additional details

Publishing Information

Imprint Title
Proceedings of the INAC 2002: International nuclear atlantic conference; 13. Brazilian national meeting on reactor physics and thermal hydraulics; 6. Brazilian national meeting on nuclear applications
Imprint Pagination
[3080 p.]
Journal Page Range
[4 p.]

Conference

Title
International nuclear atlantic conference; 13. Brazilian national meeting on reactor physics and thermal hydraulics; 6. Brazilian national meeting on nuclear applications
Acronym
INAC 2002
Dates
11-16 Aug 2002
Place
Rio de Janeiro, RJ (Brazil)

INIS

Country of Publication
Brazil
Country of Input or Organization
Brazil
INIS RN
33048235
Subject category
S21: SPECIFIC NUCLEAR REACTORS AND ASSOCIATED PLANTS;
Resource subtype / Literary indicator
Conference
Descriptors DEI
CEA; EFFICIENCY; FAST REACTORS; FORECASTING; FUEL CYCLE; GAS COOLED REACTORS; PROGRAM MANAGEMENT; REACTOR TECHNOLOGY; RESEARCH PROGRAMS
Descriptors DEC
EPITHERMAL REACTORS; FRENCH ORGANIZATIONS; MANAGEMENT; NATIONAL ORGANIZATIONS; REACTORS

Optional Information

Notes
Imprint:Published only in CD-Rom