A study of resistance to airflow through grains

By: Call Number: AIT Thesis no. AE-83-17 Contributor(s): Material type: SeriesSeries: Asian Institute of Technology. Thesis ; no. AE-83-17Publication details: Bangkok : Asian Institute of Technology, 1983Description: 76 pSubject(s): Online resources: Dissertation note: Thesis (M.Eng.) - Asian Institute of Technology, 1983 Summary: In this study , the pressure gradient versus air velocity relation ships for various grains were investigated. The experimental grains had relatively uniform size distributions. The physical characteristics of grains including the volume, surface area and porosity were also determined using special techniques specifically developed for this study. The experimental data on resistance to airflow for all grains could be adequately represented by the quadratic, cublic and log-quadratic equations. The parameters of quadratic equations were distinctly related with the physical properties of grains and the air. However, this resulted into a poor prediction of pressure gradient versus air velocity relationships for about half of the grains. A general expression for calculating the pressure drop in bed of grains due to airflow and two dimensionless parameters characterizing the flow through such porous media were developed. A unique relationship was shown to exist between the modified friction factor and Reynold's number values for all grains considered in this study. Finally, it was shown that the proposed general equation can be used satisfactorily to predict pressure drop for a given bed of grain provided the porosity and volume to surface area ratio of the individual grains were known.
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A thesis submitted in partial fulfillment of the requirements for the degree of Master of Engineering, School of Environment, Resources and Development

Thesis (M.Eng.) - Asian Institute of Technology, 1983

In this study , the pressure gradient versus air velocity relation ships for various grains were investigated. The experimental grains had relatively uniform size distributions. The physical characteristics of grains including the volume, surface area and porosity were also determined using special techniques specifically developed for this study. The experimental data on resistance to airflow for all grains could be adequately represented by the quadratic, cublic and log-quadratic equations. The parameters of quadratic equations were distinctly related with the physical properties of grains and the air. However, this resulted into a poor prediction of pressure gradient versus air velocity relationships for about half of the grains. A general expression for calculating the pressure drop in bed of grains due to airflow and two dimensionless parameters characterizing the flow through such porous media were developed. A unique relationship was shown to exist between the modified friction factor and Reynold's number values for all grains considered in this study. Finally, it was shown that the proposed general equation can be used satisfactorily to predict pressure drop for a given bed of grain provided the porosity and volume to surface area ratio of the individual grains were known.

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