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Design, Construction and CFD Modeling of a Banana-Solar Dryer with Double Pass Solar Air Collector

机译:双通太阳能空气收集器的香蕉太阳能烘干机的设计,施工和CFD建模

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A work on the design, construction and computational fluid dynamics modelling of a solar dryer with a double pass solar air collector is presented. Using fundamental relationships, an indirect solar dying system for drying banana was designed and constructed. The system consists of a drying chamber and a double pass solar collector (DPSC), connected together with a flexible aluminum pipe. The system features a unique arrangement, as the drying chamber is underneath the double pass solar collector, and the solar collector itself can be adjusted to an angle of 0° up to 35° the maintenance or research purpose. The DPSC has five longitudinal fins, lying parallel with air flow. The solar dryer is incorporated with a convective DC fan that sucks hot air from the solar collector on to the drying chamber. The DPSC achieved an optimal peak outlet temperature of 345 K with a maximum operational efficiency of 72.5%. A computational fluid dynamic (CFD) model is achieved for prediction of the dryer temperature and 3D airflow distribution within the dryer unit using ANSYS 18.2. The CFD model was validated using experimental data. The developed dryer demonstrated improved efficiency over similar dryers, and this is attributable to the unique arrangement of component parts.
机译:介绍了具有双通太阳能空气收集器的太阳能干燥器的设计,施工和计算流体动力学建模。利用基本关系,设计和建造了一种用于烘干香蕉的间接太阳消毒系统。该系统由干燥室和双通太阳能收集器(DPSC)组成,与柔性铝管一起连接。系统具有独特的布置,因为干燥室位于双通太阳能集电器下方,并且太阳能收集器本身可以调节到维护或研究目的的0°的角度至35°。 DPSC具有五个纵向翅片,与空气流平行。太阳能干燥机与对流直流风扇一起,从太阳能收集器吸入到干燥室中的热空气。 DPSC实现了345 k的最佳峰值出口温度,最大运行效率为72.5%。计算流体动力学(CFD)模型实现用于使用ANSYS 18.2预测干燥器单元内的干燥温度和3D气流分布。使用实验数据验证CFD模型。开发的烘干机在相似的干燥器上显示出提高效率,这可归因于组件零件的独特布置。

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