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Influence of stepped cylindrical turbulence generators on the thermal enhancement factor of a flat plate solar air heater

机译:阶梯式圆柱湍流发生器对平板太阳能空气加热器热增强因子的影响

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This study presents the numerical analysis on the enhancement of thermal performance of a flat plate solar air heater provided with stepped cylindrical turbulators attached below the absorber plate for assessing performance parameters such as Thermal Enhancement Factor and Thermohydraulic Performance Parameter for Reynolds numbers ranging from 3000 to 24,000. The study reveals that the cylindrical stepped turbulators led to the flow becoming highly turbulent. This flow behavior with the flow separation around the stepped generators has a beneficial aspect with regards to the performance. An attempt has been made in this paper to explain the complex flow behavior as observed from the analysis. For core diameter varying from 3 mm to 7 mm in steps of 1 mm and the relative roughness pitch ratio is varied as 11.11, 16.67, 22.22, and 27.78. The number of steps on the turbulator is varied from 1 to 3 and the number of rows of turbulators is varied from 1 to 3. The maximum Nusselt number of 76.41 is obtained for a core diameter of 7 mm corresponding to a three-row configuration at a flow Reynolds number of 24,000. It is found from the study that the thermal enhancement factor increases with the increment in number of rows and also increases with decrease in core diameter for Reynolds number range beyond 12,000. With the increasing roughness pitch the thermal enhancement factor decreases for a given configuration, while for the increase in number of steps there is a remarkable improvement in the thermal enhancement factor. A maximum thermal enhancement factor of 1.14 is achieved corresponding to a Reynolds number of 15,000. A maximum thermohydraulic performance parameter of 1.49 is achieved corresponding to a Reynolds number of 18,000 from the analysis.
机译:该研究提高了平板太阳能空气加热器的热性能的数值分析,该平板太阳能空气加热器提供有位于吸收板下方的阶梯式圆柱形湍流器,用于评估从3000到24,000的雷诺数的热增强因子和热水液化性能参数等性能参数。该研究表明,圆柱形阶梯式湍流器导致流动变得高度湍流。这种流动行为与阶梯发生器周围的流动分离具有关于性能的有益方面。本文已经尝试了,以解释从分析中观察到的复杂流动行为。对于从1mm的步长的3mm至7mm之间的芯直径,相对粗糙度距离变化为11.11,167,22.22和27.78。湍流器上的步骤数量从1到3变化,湍流仪的数量变化为1至3.获得76.41的最大露珠数,用于对应于三排配置的7mm的核心直径流动雷诺数为24,000。从该研究中发现,热增强因子随着行数的增量而增加,并且随着雷诺数范围超过12,000的岩石数量的减小也随着核心直径的增加而增加。随着粗糙度的增加,给定配置的热增强因子降低,而对于较大的步骤增加,热增强因子具有显着改善。对应于1.14的最大热增强因子对应于雷诺数15,000。 1.49的最大热液性能参数与分析中的18,000的雷诺数相对应。

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