Affiliation:
1. Bulgarian Academy of Sciences, Institute of Chemical Engineering, Sofia, Bulgaria
Abstract
The column apparatuses are main devices for solution of technological and
ecological problems in chemical and power engineering. A new approach of the
column apparatuses modeling on the base of the physical approximations of the
mechanics of continua, using two steps models: convection-diffusion type of
model (for qualitative analysis) and average concentration model (for
quantitative analysis), is presented. The convection-diffusion type of models
describe chemical and mass transfer processes in column apparatuses in the
cases of one, two ore three phases systems, where the solid phase is reagent,
catalytic or packed bad. A qualitative analysis of these models, using
generalized (dimensionless) variables, where the characteristic (inherent)
scales are the maximal or average values of the variables, is presented. The
using of the convection-diffusion type of models for quantitative analysis of
the processes in column apparatuses is not possible because the velocity
function in the convection-diffusion equation is unknown. The problem can be
avoided if the average values of the velocity and concentration over the
cross-sectional area of the column are used. The average concentration models
permit to analyze the effect of the radial nonuniformities of the velocity
and the concentration on the process efficiency in the column and to solve
the scale-up problem. The convection-diffusion type of models are presented
as a base for to be created convection and diffusion type of models.
Publisher
National Library of Serbia
Subject
Renewable Energy, Sustainability and the Environment
Cited by
4 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
1. Multi-step Modeling Algorithms;Modeling of Column Apparatus Processes;2018
2. Two-Phase Processes;Modeling of Column Apparatus Processes;2018
3. Multi-step Modeling Algorithms;Modeling of Column Apparatus Processes;2016
4. Two-Phase Processes;Modeling of Column Apparatus Processes;2016