Thermal analysis of reference repository for RBMK-1500 spent nuclear fuel in crystalline rocks

被引:1
作者
Darius Justinavicius
Arunas Sirvydas
Povilas Poskas
机构
[1] Lithuanian Energy Institute,
来源
Journal of Thermal Analysis and Calorimetry | 2014年 / 118卷
关键词
Spent nuclear fuel; Geological disposal; Crystalline rocks; Thermal analysis; Numerical modelling;
D O I
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中图分类号
学科分类号
摘要
Total amount of RBMK-1500 type spent nuclear fuel (SNF) in Lithuania is approximately 22 thousands of fuel assemblies. All these assemblies should be stored for 50 years and then disposed of. International consensus prevails that SNF and long-lived high-level radioactive wastes are best disposed of in geological repositories using a system of engineered and natural barriers. Disposed nuclear waste induces a number of coupled thermo-hydro-mechanical processes around the repository. Thermal analysis of a deep geological repository could provide temperature distribution which is required for the repository’s design and for evaluation of thermal integrity of the engineered barriers. One of the most critical parameters for the repository is peak temperature at the outer surface of the canister. This temperature cannot exceed 100 °C; otherwise, unfavourable groundwater chemistry can adversely affect chemical stability of the engineered barriers. Thermal behaviour of the conceptual Lithuanian repository for RBMK-1500 type SNF in crystalline rocks was modelled using numerical codes ANSYS FLUENT and COMPASS. Very similar temperature distributions around the disposal canister were determined using both modelling tools. The modelling results revealed the importance of coupled heat and hydrodynamical processes for peak temperature in the engineered barriers, whereas the impact of mechanical processes evaluation was insignificant. It was also determined that peak temperature at the outer surface of the disposal canister does not exceed the permitted 100 °C.
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页码:767 / 773
页数:6
相关论文
共 25 条
[1]  
Rogers KA(2009)Fire in the hole: A review of national spent nuclear fuel disposal policy Prog Nucl Energ. 51 281-289
[2]  
Tian M(2012)Measuring the thermophysical properties of porous fibrous materials with a new unsteady-state method J Therm Anal Calorim. 107 395-405
[3]  
Zhu S(2012)Heat transfer through fibrous assemblies by fractal method J Therm Anal Calorim. 110 897-905
[4]  
Pan N(2000)A Discussion of thermo-hydro-mechanical (THM) processes associated with nuclear waste repositories Int J Rock Mech Min Sci. 37 397-402
[5]  
Song WF(2001)Coupled T-H-M issues relating to radioactive waste repository design and performance Int J Rock Mech Min Sci. 38 143-161
[6]  
Yu WD(2006)Thermohydraulic test on bentonite J Therm Anal Calorim. 84 325-330
[7]  
Tsang CF(2014)Organoclays from alkaline-treated acid-activated clays J Therm Anal Calorim. 115 1465-1475
[8]  
Stephansson O(2013)Thermal behaviour and dehydroxylation kinetics of naturally occurring sepiolite and bentonite J Therm Anal Calorim. 114 1191-1199
[9]  
Hudson JA(1997)A coupled heat-moisture transfer theory for deformable unsaturated soil and its algorithmic interpretation Int J Numer Meth Eng 40 3421-3441
[10]  
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