Advanced concepts for pressure-channel reactors. Modularity, performance and safety
- 1. Chalk River Laboratories, AECL, ON (Canada)
- 2. School of Energy Systems and Nuclear Science, Univ. of Ontario Institute of Technology, Oshawa, ON (Canada)
- 3. Sheridan Park Research Community, AECL, Mississauge, ON (Canada)
Description
Based on an analysis of the development of advanced concepts for pressure-tube reactor technology, we adapt and adopt the pressure-tube reactor advantage of modularity, so that the subdivided core has the potential for optimization of the core, safety, fuel cycle and thermal performance independently, while retaining passive safety features. In addition, by adopting supercritical water-cooling, the logical developments from existing supercritical turbine technology and 'steam' systems can be utilized. Supercritical and ultra-supercritical boilers and turbines have been operating for some time in coal-fired power plants. Using coolant outlet temperatures of about 625degC achieves operating plant thermal efficiencies in the order of 45-48%, using a direct turbine cycle. In addition, by using reheat channels, the plant has the potential to produce low-cost process heat, in amounts that are customer and market dependent. The use of reheat systems further increases the overall thermal efficiency to 55% and beyond. With the flexibility of a range of plant sizes suitable for both small (400 MWe) and large (1400 MWe) electric grids, and the ability for co-generation of electric power, process heat, and hydrogen, the concept is competitive. The choice of core power, reheat channel number and exit temperature are all set by customer and materials requirements. The pressure channel is a key technology that is needed to make use of supercritical water (SCW) in CANDU reactors feasible. By optimizing the fuel bundle and fuel channel, convection and conduction assure heat removal using passive-moderator cooling. Potential for severe core damage can be almost eliminated, even without the necessity of activating the emergency-cooling systems. The small size of containment structure lends itself to a small footprint, impacts economics and building techniques. Design features related to Canadian concepts are discussed in this paper. The main conclusion is that development of SCW pressure-channel nuclear reactors is feasible and significant benefits can be expected over other thermal-energy systems. (author)
Additional details
Publishing Information
- Journal Title
- Journal of Power and Energy Systems
- Journal Volume
- 2
- Journal Issue
- 1
- Journal Page Range
- p. 112-121
- ISSN
- 1881-3062
Conference
- Title
- 15. international conference on nuclear engineering
- Acronym
- ICONE-15
- Dates
- 22-26 Apr 2007
- Place
- Nagoya, Aichi (Japan)
INIS
- Country of Publication
- Japan
- Country of Input or Organization
- Japan
- INIS RN
- 39117142
- Subject category
- S21: SPECIFIC NUCLEAR REACTORS AND ASSOCIATED PLANTS;
- Resource subtype / Literary indicator
- Conference
- Descriptors DEI
- CANDU TYPE REACTORS; COGENERATION; COOLANTS; FEASIBILITY STUDIES; MODULAR STRUCTURES; OPTIMIZATION; PERFORMANCE; PRESSURE TUBE REACTORS; SAFETY; SUPERCRITICAL STATE; THERMAL EFFICIENCY; WATER
- Descriptors DEC
- EFFICIENCY; HEAVY WATER MODERATED REACTORS; HYDROGEN COMPOUNDS; OXYGEN COMPOUNDS; POWER GENERATION; POWER REACTORS; PRESSURE TUBE REACTORS; REACTORS; STEAM GENERATION; THERMAL REACTORS
Optional Information
- Notes
- 27 refs., 5 figs., 1 tab.