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Receiver shape optimization for maximizing medium temperature CPC collector efficiency

机译:优化接收器形状以最大化介质温度CPC收集器效率

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Low optical-concentration solar thermal CPC collectors for process heat at 150-300 degrees C generally use thermal oil as the collector fluid. Thermal oils have low thermal conductivity and high viscosity, which leads to significant thermal resistance and hence reduced collector thermal efficiency. One way to minimize the thermal resistance is by having turbulent flow of the thermal oil within the receiver. For a given receiver area and mass flow rate of the fluid, this can be achieved by narrowing the flow passage but keeping the receiver area constant by adding external flat fins. In this paper a new receiver design for a compound parabolic concentrator is proposed which is a hybrid of a U-shaped tubular receiver and a bifacially irradiated flat receiver. To keep the receiver area constant, the fins are increased in width as the tube diameter is decreased. Its performance when enclosed in a glass vacuum tube and a CPC has been modelled. The transmission and absorption of solar energy, optical losses due to the receiver-reflector gap, heat transfer within the receiver, and the thermal losses have been modelled. Keeping the receiver area and fluid flow rate constant, the thermal resistance of the thermal oil flow within the receiver reduces when the flow passage is narrowed leading to increased thermal efficiency. On the other hand, the hybrid receiver has lower optical efficiency as compared to a tubular receiver due to its higher gap loss. Overall, the hybrid receiver has similar or better thermal efficiency than the tubular receiver. Thermal efficiency and effective thermal efficiency, which accounts for the pumping power penalty, shows that the performance improvement with thermal oil due to receiver shape optimization depends on the receiver area, concentration ratio, absorptivity and emissivity of the selective surface, the mass flow rate through the receiver and fluid temperature. Highest effective thermal efficiency is generally achieved in the laminar-turbulent transitional regime. For temperatures below 150 degrees C, water has been found to give better performance than thermal oil at all mass flow rates with no significant improvement in collector performance achieved by reducing the tube diameter. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在150-300摄氏度下用于过程加热的低光学浓度太阳能热CPC收集器通常使用导热油作为收集器流体。导热油具有低导热率和高粘度,这导致显着的热阻并因此降低了集热器的热效率。减小热阻的一种方法是在接收器内使导热油产生湍流。对于给定的接收器面积和流体的质量流速,这可以通过使流动通道变窄来实现,但可以通过增加外部扁平散热片来使接收器面积保持恒定。在本文中,提出了一种新的复合抛物面集中器接收器设计,该接收器设计是U形管状接收器和双面辐射平面接收器的混合体。为了保持接收器区域恒定,随着管直径的减小,翅片的宽度会增加。将其封入玻璃真空管和CPC时的性能已建模。已经对太阳能的传输和吸收,由于接收器-反射器间隙引起的光损耗,接收器内的热传递以及热损耗进行了建模。保持接收器面积和流体流速恒定,当流道变窄时,接收器内导热油流的热阻会减小,从而导致热效率提高。另一方面,与管状接收器相比,混合接收器由于其较高的间隙损耗而具有较低的光学效率。总体而言,混合接收器的热效率与管状接收器相似或更好。热效率和有效热效率(这是泵送功率的损失)说明,由于接收器形状的优化,导热油的性能改善取决于接收器的面积,浓度比,选择性表面的吸收率和发射率,通过的质量流量接收器和流体温度。通常在层流湍流过渡状态下可获得最高的有效热效率。对于低于150摄氏度的温度,发现在所有质量流量下,水的性能都比导热油好,而通过减小管的直径却无法显着改善集热器的性能。 (C)2015 Elsevier Ltd.保留所有权利。

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