Please use this identifier to cite or link to this item: https://hdl.handle.net/10316/108140
Title: Multiscale Modeling of a Packed Bed Chemical Looping Reforming (PBCLR) Reactor
Authors: Singhal, Arpit 
Cloete, Schalk
Quinta-Ferreira, Rosa M. 
Amini, Shahriar
Keywords: chemical looping reforming; particle resolved direct numerical simulation (PR-DNS); heat transfer; multiscale; packed bed; reaction rate; steam methane reforming (SMR)
Issue Date: 2017
Publisher: MDPI
Project: This work is part of a European Union project under Seventh research framework program (FP7/2007-2013) under grant agreement No. 604656 called NanoSim—a multi-scale Simulation based design platform for Cost effective CO2 capture Processes using Nano-structured materials 
Serial title, monograph or event: Energies
Volume: 10
Issue: 12
Abstract: Packed bed reactors are broadly used in industry and are under consideration for novel reactor concepts such as packed bed chemical looping reforming (PBCLR). Mass and heat transfer limitations in and around the particles in packed bed reactors strongly affect the behavior of these units. This study employs a multiscale modeling methodology to simulate a PBCLR reactor. Specifically, small-scale particle-resolved direct numerical simulation is utilized to improve large-scale mass transfer models for use in an industrial scale 1D model. Existing intra-particle mass transfer models perform well for simple first order reactions, but several model enhancements were required to model the more complex steam methane reforming reaction system. Three specific aspects required enhanced modeling: the generation of additional gas volume by the reforming reactions, the lack of clear reaction orders in the equilibrium reactions, and the diffusion of multiple reactant species into the particle. Large-scale simulations of the PBCLR reactor with the enhanced 1D model showed that the highly reactive Ni-based catalyst/oxygen carrier employed allows for the use of large particle sizes and high gas flowrates, offering potential for process intensification.
URI: https://hdl.handle.net/10316/108140
ISSN: 1996-1073
DOI: 10.3390/en10122056
Rights: openAccess
Appears in Collections:FCTUC Eng.Química - Artigos em Revistas Internacionais

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