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Computational Fluid Dynamics Modeling of Airflow in Walnut Drying Bins and Bin Modification Effect on Airflow

气流 箱子 计算流体力学 环境科学 动力学(音乐) 流体力学 机械 工程类 机械工程 物理 声学
作者
Joseph S. McIntyre,Jaya Shankar Tumuluru,Paul Funk,Ronald P. Haff,Andrew P. Breksa,Christopher L. Butts
出处
期刊:Applied Engineering in Agriculture [American Society of Agricultural and Biological Engineers]
卷期号:40 (4): 415-426
标识
DOI:10.13031/aea.15836
摘要

Highlights Walnut drying bin internal airflow simulation and visualization. Modeling of airflow through masses of in-shell walnuts. Effect of walnut drying bin modifications on airflow in the walnut mass. Comparison of computational fluid dynamic (CFD) solutions to measured air speed. Abstract. Drying walnuts in conventional drying bins can result in uneven drying reducing quality and shelf life. Improved designs for drying bins are needed, but direct testing of new configurations of drying bins is expensive and time-consuming, so there is a need for a more rapid and less expensive method to investigate drying bin designs. An alternative method to direct testing of bins is computational fluid dynamics (CFD) modeling, which can be performed rapidly. CDF modeling could provide researchers with valuable information about airflow through drying walnuts that is impractical to obtain by direct measurement. The CFD modeling method based on permeability previously employed to model airflow through drying in-shell peanuts in a drying trailer was successfully applied to modeling airflow through drying in-shell walnuts in drying bins. The results of the CFD model were validated by finding airflow patterns from the CFD analysis that corresponded to those determined from direct measurements. After validating model results, researchers investigated modifying the design of conventional stadium-style drying bins by adding multiple vented end air tubes of various lengths that extended up into the drying walnuts from the floor of the bin. CFD modeling provided researchers with a way to visualize and quantify airflow passing up through walnuts in the modified bin design and then compare it to airflow passing up through walnuts in an unmodified bin design. Study results indicated that airflow quickly slowed in the modified bin design as air moved away from the ends of the air tubes and airflow between the air tubes was slower when compared to airflow in bins without air tubes. The addition of the air tubes to walnut drying bins while producing small areas of faster airflow did not appreciably increase the overall rate of airflow or result in a more even distribution of airflow. The CFD model analysis indicated that the addition of multiple air tubes that released air from end caps at various levels in the drying walnuts would not be expected to enhance walnut drying. Keywords: Airflow, Airflow enhancement, CFD, Computational fluid dynamics modeling, Computational model validation, Drying, Modeling Walnut drying bin, Walnuts.
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