Heterogeneous mass transfer in fluidized beds by computational fluid dynamics
Vepsäläinen, Ari (2014-12-02)
Väitöskirja
Vepsäläinen, Ari
02.12.2014
Lappeenranta University of Technology
Acta Universitatis Lappeenrantaensis
Julkaisun pysyvä osoite on
https://urn.fi/URN:ISBN:978-952-265-689-6
https://urn.fi/URN:ISBN:978-952-265-689-6
Tiivistelmä
The main objective of this research is to estimate and characterize heterogeneous mass
transfer coefficients in bench- and pilot-scale fluidized bed processes by the means of
computational fluid dynamics (CFD). A further objective is to benchmark the heterogeneous
mass transfer coefficients predicted by fine-grid Eulerian CFD simulations against
empirical data presented in the scientific literature.
First, a fine-grid two-dimensional Eulerian CFD model with a solid and gas phase has
been designed. The model is applied for transient two-dimensional simulations of char
combustion in small-scale bubbling and turbulent fluidized beds. The same approach is
used to simulate a novel fluidized bed energy conversion process developed for the carbon
capture, chemical looping combustion operated with a gaseous fuel. In order to analyze
the results of the CFD simulations, two one-dimensional fluidized bed models have been
formulated. The single-phase and bubble-emulsion models were applied to derive the
average gas-bed and interphase mass transfer coefficients, respectively.
In the analysis, the effects of various fluidized bed operation parameters, such as fluidization,
velocity, particle and bubble diameter, reactor size, and chemical kinetics, on the
heterogeneous mass transfer coefficients in the lower fluidized bed are evaluated extensively.
The analysis shows that the fine-grid Eulerian CFD model can predict the heterogeneous
mass transfer coefficients quantitatively with acceptable accuracy. Qualitatively,
the CFD-based research of fluidized bed process revealed several new scientific results,
such as parametrical relationships. The huge variance of seven orders of magnitude within
the bed Sherwood numbers presented in the literature could be explained by the change
of controlling mechanisms in the overall heterogeneous mass transfer process with the
varied process conditions. The research opens new process-specific insights into the reactive
fluidized bed processes, such as a strong mass transfer control over heterogeneous
reaction rate, a dominance of interphase mass transfer in the fine-particle fluidized beds
and a strong chemical kinetic dependence of the average gas-bed mass transfer. The obtained
mass transfer coefficients can be applied in fluidized bed models used for various
engineering design, reactor scale-up and process research tasks, and they consequently
provide an enhanced prediction accuracy of the performance of fluidized bed processes.
transfer coefficients in bench- and pilot-scale fluidized bed processes by the means of
computational fluid dynamics (CFD). A further objective is to benchmark the heterogeneous
mass transfer coefficients predicted by fine-grid Eulerian CFD simulations against
empirical data presented in the scientific literature.
First, a fine-grid two-dimensional Eulerian CFD model with a solid and gas phase has
been designed. The model is applied for transient two-dimensional simulations of char
combustion in small-scale bubbling and turbulent fluidized beds. The same approach is
used to simulate a novel fluidized bed energy conversion process developed for the carbon
capture, chemical looping combustion operated with a gaseous fuel. In order to analyze
the results of the CFD simulations, two one-dimensional fluidized bed models have been
formulated. The single-phase and bubble-emulsion models were applied to derive the
average gas-bed and interphase mass transfer coefficients, respectively.
In the analysis, the effects of various fluidized bed operation parameters, such as fluidization,
velocity, particle and bubble diameter, reactor size, and chemical kinetics, on the
heterogeneous mass transfer coefficients in the lower fluidized bed are evaluated extensively.
The analysis shows that the fine-grid Eulerian CFD model can predict the heterogeneous
mass transfer coefficients quantitatively with acceptable accuracy. Qualitatively,
the CFD-based research of fluidized bed process revealed several new scientific results,
such as parametrical relationships. The huge variance of seven orders of magnitude within
the bed Sherwood numbers presented in the literature could be explained by the change
of controlling mechanisms in the overall heterogeneous mass transfer process with the
varied process conditions. The research opens new process-specific insights into the reactive
fluidized bed processes, such as a strong mass transfer control over heterogeneous
reaction rate, a dominance of interphase mass transfer in the fine-particle fluidized beds
and a strong chemical kinetic dependence of the average gas-bed mass transfer. The obtained
mass transfer coefficients can be applied in fluidized bed models used for various
engineering design, reactor scale-up and process research tasks, and they consequently
provide an enhanced prediction accuracy of the performance of fluidized bed processes.
Kokoelmat
- Väitöskirjat [1102]