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Multi-scale magnetic resonance measurements and validation of Discrete Element Model simulations
Authors:Christoph R. Mü  ller,Daniel J. Holland,James R. Third,Andrew J. Sederman,John S. Dennis,Lynn F. Gladden
Affiliation:aInstitute of Energy Technology, Department of Mechanical and Process Engineering, ETH Zurich, Leonhardstrasse 27, 8092 Zurich, Switzerland;bDepartment of Chemical Engineering and Biotechnology, University of Cambridge, Pembroke Street, CB2 3RA, United Kingdom
Abstract:This short review describes the capabilities of magnetic resonance (MR) to image opaque single- and two-phase granular systems, such as rotating cylinders and gas-fluidized beds operated in different fluidization regimes. The unique capability of MR to not only image the solids’ distribution (voidage) but also the velocity of the particulate phase is clearly shown. It is demonstrated that MR can provide measurements over different length and time scales. With the MR equipment used for the studies summarized here, temporal and spatial scales range from sub-millisecond to hours and from a few hundred micrometres to a few centimetres, respectively. Besides providing crucial data required for an improved understanding of the underlying physics of granular flows, multi-scale MR measurements were also used to validate numerical simulations of granular systems. It is shown that predictions of time-averaged properties, such as voidage and velocity of the particulate phase, made using the Discrete Element Model agree very well with MR measurements.
Keywords:Discrete Element Modelling   Magnetic resonance imaging   Multiscale   Gas-fluidized beds   Rotating cylinders
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