Axial Dispersion and Back-mixing of Gas Phase in Pebble Bed Reactor
Main Article Content
Abstract
Despite the worldwide attended of pebble bed reactors (PBRs), there is a lack of fundamental understanding of the complex flow pattern. In this work, the non-ideal flow behavior of the gas phase, which is used, for cooling has been investigated experimentally in a 0.3 m diameter pebble bed. The extent of mixing and dispersion of the gas phase has been qualified. The effect of gas velocity on the axial dispersion has been investigated with range from 0.05 to 0.6 m/s covering both the laminar and turbulent flow regimes. Glass bead particles of 1.2 cm diameter and 2.5 gm/cm3, which is randomly and closely packed have been used to mimic the pebbles. An advanced gas tracer technique was applied to measure the residence time distribution (RTD) of gas phase using impulse tracer. The axial dispersion coefficients of gas phase in the studied pebble bed have been estimated using the axial dispersion model (ADM). It was found that the flow pattern of the gas phase deviates from plug flow depending on the superficial gas velocity. The results showed that the dispersion of the gas reduces as the gas velocity and Reynolds numbers increased.
Article Details
Section

This work is licensed under a Creative Commons Attribution 4.0 International License.
THIS IS AN OPEN ACCESS ARTICLE UNDER THE CC BY LICENSE http://creativecommons.org/licenses/by/4.0/
References
Lee, J., Park, G., Kim, K., Lee, W., “Numerical treatment of pebble contact in the flow and heat transfer analysis of a pebble bed reactor core” Nuclear Engineering and Design 237, 2183–2196 (2007).
Huda, M. Q., Obara, T., “Development and testing of analytical models for the pebble bed type HTRs” Annals of Nuclear Energy, 35, 1994-2005 (2008).
Yanjie, L., Yong, X., Shengyao, J., “DEM simulations and experiments of pebble flow with mono-sized spheres” Powder Technology, 193, 312-318 (2009).
Hassan, Y. A., Dominguez-Ontiveros, E.E., “Flow visualization in a pebble bed reactor experiment using PIV and refractive index matching techniques” Nuclear Engineering and Design , 238, 3080-3085 (2008).
Lee, J-Y., Lee, S-Y., “Flow visualization in the scaled up pebble bed of high temperature gas-cooled reactor using particle image velocimetry method” J. Eng. Gas Turbines Power, 131, 064502-064506, (2009)
Levenspiel, O., Smith, W.K., “Notes on the diffusion-type model for the longitudinal mixing of fluids in flow” Chem. Eng. Sci. 6, 227–233 (1957).
Chao, R., Hoelscher, H.E., “Simultaneous axial dispersion and adsorption in packed beds” AIChE Jornal, 12, 271–278 (1966).
Edwards, M.F., Richardson, J.F., “Gas dispersion in packed beds” Chem. Eng. Sci. 23,109–123 (1968).
Gunn, D.J., “Theory of axial and radial dispersion in packed beds” Trans IChemE. 47, T351–T359, (1969).
Tsotsas, E., Schlunder, E., “On axial dispersion in packed beds with fluid flow” Chem. Eng. Process. 24, 15–31(1988).
Gunn, D.J., “An analysis of convective dispersion and reaction in the fixed-bed reactor” International Journal of Heat and Mass Transfer, 47, 2861-2875, (2004).
Danckwerts, P. V., “Continuous flow systems: distribution of residence times”, Chem. Eng. Sci., Vol. 2, 1-13 (1953).
Bischoff, K. B., McCracken, E. A., “Tracer tests in flow systems” Ind. Eng. Chem. 58, 18–31(1966).
Barjaktarovic, B., Sovilj, M., Popovic, S., “Hydrodynamics and axial mixing in a packed gas-liquid column” BIBLID, 34, 33-48 (2003).
Delgado, J., “A critical review of dispersion in packed beds” Heat & Mass Transfer, 42, 279–310 (2006).
Han, L., “Slurry bubble column hydrodynamics”, Washington University, St. Louis, D.Sc. Thesis (2007).
Levenspiel, O., Chemical Reaction Engineering, Third ed. John Wiley & Sons, New York (1999).
Fogler, H.S., “Elements of chemical reaction engineering” Fourth ed. John Wiley & Sons, New York (2005).