by Lee, Dong-Gyu, Park, Jea-Ho, Lee, Yong Hoon, Baeg, Chang-Yeol and Kim, Hyung-Jin
Abstract:
A full-sized model for the horizontally oriented metal cask containing 21 spent fuel assemblies has been considered to evaluate the internal natural convection behavior within a dry shield canister (DSC) filled with helium as a working fluid. A variety of two-dimensional CFD numerical investigations using a turbulent model have been performed to evaluate the heat transfer characteristics and the velocity distribution of natural convection inside the canister. The present numerical solutions for a range of Rayleigh number values ($3times 10^6 – 3times 10^7$) and a working fluid of air are further validated by comparing with the experimental data from previous work, and they agreed well with the experimental results. The predicted temperature field has indicated that the peak temperature is located in the second basket from the top along the vertical center line by effects of the natural convection. As the Rayleigh number increases, the convective heat transfer is dominant and the heat transfer due to the local circulation becomes stronger. The heat transfer characteristics show that the Nusselt numbers corresponding to $1.5 times 10^6 < Ra < 1.0 times 10^7$ are proportional to 0.5 power of the Rayleigh number, while the Nusselt numbers for $1.0 times 10^7 < Ra 1.0 times 10^7$.
Reference:
Dong-Gyu Lee, Jea-Ho Park, Yong Hoon Lee, Chang-Yeol Baeg, Hyung-Jin Kim, "Natural convection heat transfer characteristics in the canister with horizontal installation of dual purpose cask for spent nuclear fuel", Nuclear Engineering and Technology, 45(7), December 2013, pp. 969-978.
Bibtex Entry:
@article{Lee2013NET, author = {Lee, Dong-Gyu and Park, Jea-Ho and Lee, Yong Hoon and Baeg, Chang-Yeol and Kim, Hyung-Jin}, title = {Natural convection heat transfer characteristics in the canister with horizontal installation of dual purpose cask for spent nuclear fuel}, journal = {Nuclear Engineering and Technology}, year = {2013}, month = dec, volume = {45}, number = {7}, pages = {969-978}, pdf = {https://www.sciencedirect.com/science/article/pii/S1738573315300826/pdfft?md5=b8c528d75ceabdd4fae2b2059cdcb23d&pid=1-s2.0-S1738573315300826-main.pdf}, doi = {10.5516/NET.06.2012.092}, gsid = {2570264026823339171}, comment = {}, note = {}, abstract = {A full-sized model for the horizontally oriented metal cask containing 21 spent fuel assemblies has been considered to evaluate the internal natural convection behavior within a dry shield canister (DSC) filled with helium as a working fluid. A variety of two-dimensional CFD numerical investigations using a turbulent model have been performed to evaluate the heat transfer characteristics and the velocity distribution of natural convection inside the canister. The present numerical solutions for a range of Rayleigh number values ($3times 10^6 - 3times 10^7$) and a working fluid of air are further validated by comparing with the experimental data from previous work, and they agreed well with the experimental results. The predicted temperature field has indicated that the peak temperature is located in the second basket from the top along the vertical center line by effects of the natural convection. As the Rayleigh number increases, the convective heat transfer is dominant and the heat transfer due to the local circulation becomes stronger. The heat transfer characteristics show that the Nusselt numbers corresponding to $1.5 times 10^6 < Ra < 1.0 times 10^7$ are proportional to 0.5 power of the Rayleigh number, while the Nusselt numbers for $1.0 times 10^7 < Ra < 8.0 times 10^7$ are proportional to 0.27 power of the Rayleigh number. These results agreed well with the trends of the experimental data for $Ra > 1.0 times 10^7$.}, }