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AIR-SIDE HEAT TRANSFER AND PRESSURE DROP CHARACTERISTICS OF PERIPHERAL FIN HEAT EXCHANGERS

机译:外围翅片换热器的空气侧换热和压降特性

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We present an experimental evaluation of the peripheral finned-tube heat exchanger. In this novel compact evaporator geometry, the air-side is composed by an arrangement of open-pore cells formed by radial fins whose bases are attached to the tubes and whose tips are connected to peripheral fins. Each fin arrangement is made up of six radial fins and six peripheral fins forming a hexagon-like structure. The air-side fin configuration is composed of three levels of fin arrangement, each characterized by the length of radial fin and mounted with a 30° offset from its neighboring level. Experimental data on the air-side heat transfer and pressure drop were generated in an open-loop wind tunnel calorimeter. A one-dimensional theoretical model based on the theory of pomus media has also been developed to predict the thermal-hydraulic behavior of the heat exchanger. The model incorporates the actual fin geometry into the calculation of the air-side porosity. The air-side permeability is calculated according to the Kozeny-Carman model with the particle diameter definition due to Whitaker and the friction factor correlation due to Ergun. The model overpredicts the air-side thermal conductance by less than 15% for air flow rates higher than 14 L/s. The air-side pressure drop is underpredicted by the model, but still within the limits encountered in the literature. The analysis is complemented with an entropy generation minimization analysis in order to demonstrate the procedure for obtaining an optimized configuration of the heat exchanger.
机译:我们介绍了外周翅片管热交换器的实验评价。在这种新型紧凑型蒸发器几何形状中,空气侧由由径向翅片形成的开孔电池的布置构成,该径向翅片形成,其底座连接到管,其尖端连接到外围翅片。每个翅片布置由六个径向翅片和六个外周翅片组成,形成六边形结构。空气侧鳍构造由三个级别的翅片装置组成,每个鳍片布置包括径向翅片的长度,并从其相邻电平偏移30°。在开环风隧道量热计中产生了关于空气侧传热和压降的实验数据。还开发了一种基于Pomus介质理论的一维理论模型,以预测热交换器的热液压行为。该模型将实际的翅片几何与空气侧孔隙率的计算结合在一起。根据Kozeny-Carman模型计算空气侧渗透率,其由于粉末引起的颗粒直径定义以及由于Ergun引起的摩擦因子相关性。对于高于14L / s的空气流速,模型超出了空气侧的热敏度小于15%。空气侧压降由模型不足,但仍然在文献中遇到的限制范围内。该分析互补,熵产生最小化分析,以便证明获得热交换器的优化配置的过程。

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