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Validation of Dimensionless Parameters for Distinguishing between Homogeneous and Bubbling Fluidizations

Validation of Dimensionless Parameters for Distinguishing between Homogeneous and Bubbling Fluidizations
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摘要 The difference between homogeneous and bubbling fluidization behaviors has been studied for the past 70 years, where several researchers have reported on the influence of interparticle forces in fluidization. Although interparticle forces such as van der Waals forces are evident in a real system, these forces are not the determinant in homogeneous fluidization, which can be simulated without any interparticle forces. In our previous study, the difference in fundamental mechanisms of the two fluidization states was analytically determined with a dimensionless gravity term, comprising the Reynolds number, Archimedes number, and density ratio. Nevertheless, some researchers insist that interparticle forces are dominant and a hydrodynamic force is not dominant. In this study, a dimensional analysis was applied to obtain a dominant parameter for distinguishing two fluidizations. Furthermore, some parameters were examined by comparing the experimental data in previous studies. The results indicated that hydrodynamic force is the dominant factor and the dimensionless gravity term is the dominant parameter in differentiating the two fluidized states. The difference between homogeneous and bubbling fluidization behaviors has been studied for the past 70 years, where several researchers have reported on the influence of interparticle forces in fluidization. Although interparticle forces such as van der Waals forces are evident in a real system, these forces are not the determinant in homogeneous fluidization, which can be simulated without any interparticle forces. In our previous study, the difference in fundamental mechanisms of the two fluidization states was analytically determined with a dimensionless gravity term, comprising the Reynolds number, Archimedes number, and density ratio. Nevertheless, some researchers insist that interparticle forces are dominant and a hydrodynamic force is not dominant. In this study, a dimensional analysis was applied to obtain a dominant parameter for distinguishing two fluidizations. Furthermore, some parameters were examined by comparing the experimental data in previous studies. The results indicated that hydrodynamic force is the dominant factor and the dimensionless gravity term is the dominant parameter in differentiating the two fluidized states.
作者 Kenya Kuwagi Atsuto Kogane Yui Sasaki Hiroyuki Hirano Kenya Kuwagi;Atsuto Kogane;Yui Sasaki;Hiroyuki Hirano(Department of Mechanical Systems Engineering, Okayama University of Science, Okayama, Japan;Department of Applied Chemistry and Biotechnology, Okayama University of Science, Okayama, Japan)
出处 《Open Journal of Fluid Dynamics》 2021年第2期81-97,共17页 流体动力学(英文)
关键词 Bubbling Fluidization Homogeneous Fluidization Aggregative PARTICULATE Dimensional Analysis Bubbling Fluidization Homogeneous Fluidization Aggregative Particulate Dimensional Analysis
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