Study of heat transfer by using DEM–CFD method in a randomly packed pebble-bed reactor

被引:0
作者
Qiang Niu
Na-Xiu Wang
机构
[1] Chinese Academy of Sciences,Shanghai Institute of Applied Physics
[2] Chinese Academy of Sciences,CAS Innovative Academies in TMSR Energy System
[3] University of Chinese Academy of Sciences,undefined
来源
Nuclear Science and Techniques | 2019年 / 30卷
关键词
Discrete element method; Computational fluid dynamics; Pebble bed; Heat transfer; Natural convection;
D O I
暂无
中图分类号
学科分类号
摘要
The pebble-bed reactor is one of the most promising designs for the nuclear energy industry. In this paper, a discrete element method–computational fluid dynamics (DEM–CFD) approach that includes thermal conduction, radiation, and natural convection mechanisms was proposed to simulate the thermal-fluid phenomena after the failure of forced circulation cooling system in a pebble-bed core. The whole large-scale packed bed was created using the DEM technique, and the calculated radial porosity of the bed was validated with empirical correlations reported by researchers. To reduce computational costs, a segment of the bed was extracted, which served as a good representative of the large-scale packed bed for CFD calculation. The temperature distributions simulated with two different fluids in this DEM–CFD approach were in good agreement with SANA experimental data. The influence of the natural convection mechanism on heat transfer must be taken into account for coolants with strong convective capacity. The proposed DEM–CFD methodology offers a computationally efficient and widely applied method for understanding the heat transfer process in a pebble-bed core. The method can also be easily extended to assess the passive safety features of newly designed fluoride-salt-cooled pebble-bed reactors.
引用
收藏
相关论文
共 55 条
[11]  
Rousseau PG(2015)Modeling stationary and moving pebbles in a pebble bed reactor Ann. Nucl. Energy 80 52-37
[12]  
Greyvenstein GP(2016)Study of flow through a packed bed using discrete element method and computational fluid dynamics J. Taiwan Inst. Chem. E 63 71-65
[13]  
Baggemann J(2017)Heat transfer to a gas from densely packed beds of monodisperse spherical particles Chem. Eng. J. 314 27-410
[14]  
Shi D(1979)A discrete numerical model for granular assemblies Gotechnique 29 47-3523
[15]  
Kasselmann S(2009)CFD-based analysis of the wall effect on the pressure drop in packed beds with moderate tube/particle diameter ratios in the laminar flow regime Chem. Eng. J. 155 404-3079
[16]  
Calis HPA(1983)Comprehensive, theoretically based, correlating equations for free convection from isothermal spheres Chem. Eng. Commun. 24 339-2029
[17]  
Nijenhuis J(2008)Radial variation in porosity in annular packed beds Nucl. Eng. Des. 238 3073-201
[18]  
Paikert BC(2003)Voidage variation in packed beds at small column to particle diameter ratio AIChe J. 49 2022-1818
[19]  
Dixon AG(2012)Multi-sphere unit cell model to calculate the effective thermal conductivity in packed pebble beds of mono-sized spheres Nucl. Eng. Des. 247 183-3924
[20]  
Nijemeisland M(2010)A review of correlations to model the packing structure and effective thermal conductivity in packed beds of mono-sized spherical particles Nucl. Eng. Des. 240 1803-269