ADVANCED SODIUM COOLED FAST REACTOR BN 1800 V
ADVANCED SODIUM COOLED FAST REACTOR BN -1800 V. Poplavsky. А. Tsiboulya. А. Каmaev (IPPE. Obninsk) B. Vasiliev. Yu. Каmanin. А. Тimofeev (ОКBМ. N. Novgorod) V. Еrshov. К. Suknev (SPb. АEP. St. Petersburg)
Introduction Mastering and development of SFR: • implementation BN-350 BN-600 1000 МWth 1470 МWth 1973 -1998 • Design studies BMN-170 400 МWth 1980 BN-600 М 1520 МWth BN-800 2100 МWth Under construction BN-1600 3850 МWth
• Key tasks of new designs BN-800 - Achievement of up-to-date safety level; - Implementation of the fuel cycle based on mixed uranium-plutonium and demonstration of its closure and MA incineration Advanced BN -Assurance of competitiveness with further safety improvement - Commercial implementation of advanced fuel cycle
Basic areas of development • Max use of gained experience (pool type reactor design. threecircuit heat removal system. design of the main components) • Increase of unit power up to 1800 MWe (taking into account trends in the development of thermal reactor design etc. ) • Increase of thermal efficiency up to ~ 46 % • Decrease of the number of systems and components • Aiming at high efficiency fuel cycle using high density fuel
Choice of power unit parameters I circuit Phenix* Super. Phenix EFR BN-600* BN-800 BN-1800* II circuit Efficiency 560/400°С 512/246°С(17. 7 МPa) 545/395°С 545 -395°C 550/377°С 547/354°С 575/410°С 487/237°С (18. 2 МPа) 41. 5/39. 5% 490/240°C (18. 4 МPа) 41. 7/39. 6% 505/240°С (13. 7 МPа) 42. 5/40% 490/210°С (13. 7 МPа) 41. 9/38. 8% 525/270°С (25 МPа) 46. 2/44. 5% * - steam reheat by sodium 44. 5/42. 4%
Reasons for adoption of high parameters • mastered technology of the third circuit (fossil fuel plants) • successful operating experience of Phenix and BN-600 reactors • possibility of introduction of Cr 16 Ni 11 Мo 3 steel for high temperature structures instead of Cr 18 Ni 9 steel Tasks related to assurance of high parameters • development of high temperature radiation resistant steel for the fuel element cladding • development of SG design for supercritical parameters
Main arrangement approaches • all primary components and systems are located in the reactor vessel ( =17 m): · З primary pumps+ 6 IHX (common suction header) · 2 cold traps cooled by nitrogen · sodium quality control devices • number of secondary loops (and SG) - 6 (bellows) • DHRS – Air heat exchangers connected to each secondary loop with continuously operating EM pumps • number of turbine generators - 1
1 - reactor; 2 -IHX; 3 – pressure compensator; 4 – hydraulic lock; 5 – primary pump; 6 – EM pump; 7 – air heat exchanger; 8 – steam generator; 9 - reheater; 10 – secondary pump; 11 – cold trap; 12 – water heat exchanger BN-1800: flow diagram
Main components • Primary pumps (3) – centrifugal, submerged design, 7. 8 МW • Secondary pumps (6) - centrifugal, submerged design, 2. 3 МW • IHX (6) – counter-flow design with tube bends for thermal expansion compensation • CRDM (19 CR, 13 SR. 5 PSR) – electromechanical design • SG (6 EV-SH +6 RH) – counter-flow, straight-tube design The most important goal of components development is to assure max life time and min repair work with high reliability (for the plant: 60 years life time, load factor 0. 9)
BN-1800 reactor
BN-1800 reactor
Reactor core • Pancake type (Н=0. 8 m; D=5. 2 m) with the upper sodium plenum • Nitride fuel. Fuel element 8. 6 х0. 55 mm. SA 184 х3. 5 mm • Single enrichment (~15% Pu+MA in equilibrium state) • qemax =41/30 k. W/m (468 SA/174 SA) • Тобmax=3(4)х500 ef, days. Вmax=12. 2% h. а. • Temperature and power reactivity effect = -0. 9%. • Burn-up reactivity effect = -0. 3%. SVRE = +0. 2% • BR = 1 - 1. 3 (without blanket – with blanket)
Map of the BN-1800 reactor core
Characteristics of steam generator
Refueling system • Fresh fuel storage and cooling pool for one reactor loading • In-vessel refueling system · Straight type refueling mechanism · L-type refueling mechanism · vertical elevator • Ex-vessel refueling system (without fresh and spent fuel storage drums) · SA transfer mechanism located on the rotating table · cells for SA heating - 5 · cells for SA washing - 3 · inclined elevator
High safety assurance • design approaches adopted for the BN-600 and BN-800 • assurance of passive operation of CR in case of temperature increase • improvement of DHRS reliability (permanent readiness state) • no primary sodium piping • improvement of confinement systems
Metal consumption of BN-1800 reactor plant, t/МWe
BN-1800 power unit
BN-1800 power unit
Technical and economical characteristics of BN-1800
Conclusion • BN-1800 reactor power unit meats requirements for breeder of 21 st century: * its economical characteristics are comparable with those of VVER 1500 * it assures BR=1 -1. 3 and possibility of МА incineration * it assures high efficiency of non-proliferation (closed fuel cycle with МА) * it is characterized by high safety • Key areas of R&D work * development of new structural materials for the fuel element cladding and high density fuel element design * development of vessel-type steam generator design for supercritical parameters • Estimated design development period ~7 -10 years
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