Analysis of Granular Flow in a Pebble-Bed Nuclear Reactor
Abstract
Pebble-bed nuclear reactor technology, which is currently being revived around the world, raises fundamental questions about dense granular flow in silos. A typical reactor core is composed of graphite fuel pebbles, which drain very slowly in a continuous refueling process. Pebble flow is poorly understood and not easily accessible to experiments, and yet it has a major impact on reactor physics. To address this problem, we perform full-scale, discrete-element simulations in realistic geometries, with up to 440,000 frictional, viscoelastic 6cm-diameter spheres draining in a cylindrical vessel of diameter 3.5m and height 10m with bottom funnels angled at 30 degrees or 60 degrees. We also simulate a bidisperse core with a dynamic central column of smaller graphite moderator pebbles and show that little mixing occurs down to a 1:2 diameter ratio. We analyze the mean velocity, diffusion and mixing, local ordering and porosity (from Voronoi volumes), the residence-time distribution, and the effects of wall friction and discuss implications for reactor design and the basic physics of granular flow.
Keywords
Cite
@article{arxiv.cond-mat/0602395,
title = {Analysis of Granular Flow in a Pebble-Bed Nuclear Reactor},
author = {Chris H. Rycroft and Gary S. Grest and James W. Landry and Martin Z. Bazant},
journal= {arXiv preprint arXiv:cond-mat/0602395},
year = {2009}
}
Comments
18 pages, 21 figures