Effect of cohesion on gas residence time distribution in fluidized beds

Jari Kolehmainen, Ali Ozel, Y. Jiang, Sankaran Sundaresan

Research output: Chapter in Book/Report/Conference proceedingConference contribution

Abstract

Gas residence time distribution (RTD) is an important consideration in industrial fluidized bed reactors, owing to its influence on conversion and product selectivity [1]. Inhomogeneous flow behavior, which is a concern in fluidized beds, affects the RTD appreciably. Although inhomogeneities arise in fluidization of both cohesive and non-cohesive particles, the present study focuses on the effect of inter-particle cohesion on gas RTD in a model system.

In industrial applications such as fluid cokers [2,3], cohesion would come about through liquid bridge formed between particles [4]. Dissolution of small gaseous molecules in this liquid would affect their RTDs. In the present study, we have employed, for the sake of simplicity of numerical computations, inter-particle cohesion through van der Waals force as a simpler proxy for the more complex liquid bridge force. The strength of cohesion is characterized by the Bond number (Bo) representing the ratio of maximum cohesive force between two particles and the weight of a particle. In this study, we performed CFD-DEM simulations of a small fluidized bed. Changing Bo changes the flow behavior. In addition to the flow, we tracked the evolution of the concentration of an absorbing tracer. The rate of mass transfer between the particles and the gas is quantified through Gunn’s correlation [5]. The partitioning of the tracer between the gas and the solid is quantified through a linear isotherm. By studying outlet concentration following a step change in feed concentration of the tracer, we determined the gas phase RTD. Through simulation campaign, we have stablished the effect of Bo and equilibrium constant on the RTD.

The mean residence time is essentially independent of the cohesion, but increases linearly with the equilibrium constant, which is consistent with one-dimensional models. For weakly absorbing particles, cohesion has only a mild effect on the higher moments of the residence time distributions. However, for moderately absorbing particles there is an appreciable increase in the higher moments when cohesion is increased. This increase in the higher moment results from a longer tail in the RTD, which is attributed to clustering that hinders the mass transfer between the particles and the gas.
Original languageEnglish
Title of host publication2018 AIChE Annual Meeting
PublisherAIChE
ISBN (Print)9780816911080
Publication statusPublished - 2018
EventAIChE Annual Meeting 2018 - Pittsburgh, United States
Duration: 28 Oct 20182 Nov 2018
https://www.aiche.org/conferences/aiche-annual-meeting/2018

Conference

ConferenceAIChE Annual Meeting 2018
Country/TerritoryUnited States
CityPittsburgh
Period28/10/182/11/18
Internet address

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