DocumentCode :
2122184
Title :
CFD study of single phase flow in a PWR spacer grid
Author :
Khan, M.O. ; Hussain, Shiraz ; Rafique, M. ; Ahmad, Ayaz ; Akhtar, W.
Author_Institution :
Directorate Gen. Nucl. Power Fuel, Pakistan Atomic Energy Comm., Islamabad, Pakistan
fYear :
2013
fDate :
15-19 Jan. 2013
Firstpage :
243
Lastpage :
248
Abstract :
Spacer grids are an integral part of pressurized water reactor (PWR) fuel assemblies. They provide structural integrity as well as play a vital role in defining the thermal hydraulic behavior of the fuel assembly. The spacer grid design is continuously being improved to achieve better heat transfer characteristics. The studies performed to date include the design optimization and effects of mixing vanes on the thermal hydraulic behavior of fuel assembly. Majority of these studies do not include the effects of springs and dimples of the spacer grid. The present study was performed to analyze the flow behavior and pressure drop across a single coolant channel in the region of spacer grid along with all geometrical details. Detailed analysis of a single coolant channel comprising spacer-grid cell with dimples and spring was done using Ansys-CFX. The mesh independency study was carried out to make a compromise between solution time and accuracy. The problem was solved using K-ε model along with scalable-wall-function option. The Reynolds averaged mass conservation and momentum conservation equations were solved and the pressure and velocity field of flow channel was obtained. The average velocity varies from 2.52m/s to 7.35m/s for Reynolds number variation from 4.0×104 to 11.7×104. The cross flow velocities vary from 0.2 to 0.57m/s for these flow conditions. The Euler numbers calculated for these flow conditions were compared to the documented experimental results and were found to be in very good agreement. The analysis results conclude that single cell approach is an accurate and economical approach for predicting the pressure drop across the spacer-grid. The analysis also confirmed the applicability of k-ε model with scalable-wall-function for the prediction of the single phase hydraulic characteristics of spacer-grids.
Keywords :
blades; boundary layer turbulence; channel flow; computational fluid dynamics; fission reactor coolants; fission reactor cooling; fission reactor design; fission reactor fuel; geometry; heat transfer; hydraulic systems; light water reactors; mesh generation; optimisation; pressure vessels; Ansys-CFX; CFD study; Euler numbers; PWR spacer grid; Reynolds averaged mass conservation equations; Reynolds number variation; average velocity; cross flow velocities; design optimization; economical approach; flow behavior; flow channel; flow conditions; geometrical details; heat transfer characteristics; k-ε model; mesh independency study; mixing vane effects; momentum conservation equations; pressure drop; pressure field; pressurized water reactor fuel assembly; scalable-wall-function option; single cell approach; single coolant channel; single phase flow; single phase hydraulic characteristics; solution accuracy; solution time; spacer grid design; spacer grid dimple; spacer grid region; spacer grid spring; spacer-grid cell; structural integrity; thermal hydraulic behavior; velocity 0.2 m/s to 0.57 m/s; velocity 2.52 m/s to 7.35 m/s; velocity field; Assembly; Blades; Computational fluid dynamics; Electronic mail; Fuels; Heating; K-ε; scalable wall function; spacer grids; turbulence model;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Applied Sciences and Technology (IBCAST), 2013 10th International Bhurban Conference on
Conference_Location :
Islamabad
Print_ISBN :
978-1-4673-4425-8
Type :
conf
DOI :
10.1109/IBCAST.2013.6512161
Filename :
6512161
Link To Document :
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