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Numerical and experimental study of a solar micro concentrating collector

机译:太阳能微集热器的数值与实验研究

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Natural convection in fluid-filled enclosures driven solely by a temperature difference represents an important phenomenon due to its numerous engineering applications. Applications span diverse fields such as passive solar heating, solar collectors and the energy efficient design of buildings. In this paper, we study convection inside a rooftop concentrating collector designed to operate at temperatures up to 200 degrees C. The absorber is contained in a sealed enclosure to minimise convective losses. The main heat losses are due to natural convection inside the enclosure and radiation heat transfer from the absorber tube. A numerical and experimental analysis of the combined laminar natural convection and surface radiation heat transfer inside the collector receiver cavity are presented. A computational fluid dynamics model for the prototype collector has been developed using ANSYS-CFX. Radiation and convection heat loss has been investigated as a function of absorber temperatures, ranging from 70 degrees C to 200 degrees C. Measurements of overall heat loss and particle imaging velocimetry (PIV) were used to experimentally determine the heat and mass transport within the enclosure. Excellent qualitative and quantitative agreement between the CFD and experiments were achieved. (C) 2014 Elsevier Ltd. All rights reserved.
机译:由于其众多的工程应用,仅由温度差驱动的充满流体的外壳中的自然对流就代表了一种重要现象。其应用跨越了多个领域,例如被动式太阳能采暖,太阳能收集器和建筑物的节能设计。在本文中,我们研究了屋顶浓缩集热器内部的对流,该集热器设计用于在200摄氏度以下的温度下运行。吸收器装在密封的外壳中,以将对流损失降至最低。主要的热量损失是由于外壳内部的自然对流以及来自吸收器管的辐射热传递所致。给出了层流自然对流和表面辐射热在集热器接收器腔体内的结合的数值和实验分析。使用ANSYS-CFX开发了用于原型收集器的计算流体动力学模型。已经研究了辐射和对流热损失随吸收器温度变化的函数,温度范围为70摄氏度至200摄氏度。使用了整体热损失和粒子成像测速仪(PIV)的测量值,通过实验确定了外壳内的热量和质量传递。 CFD和实验之间获得了极好的定性和定量一致性。 (C)2014 Elsevier Ltd.保留所有权利。

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