Xu Guoying, Chen Wei, Deng Shiming, Zhang Xiaosong, Zhao Sainan
School of Energy and Environment, Southeast University, 210096 Nanjing, China.
Department of Building Services Engineering, The Hong Kong Polytechnic University, Hong Kong.
Nanomaterials (Basel). 2015 Dec 4;5(4):2131-2147. doi: 10.3390/nano5042131.
Application of solar collectors for hot water supply, space heating, and cooling plays a significant role in reducing building energy consumption. For conventional solar collectors, solar radiation is absorbed by spectral selective coating on the collectors' tube/plate wall. The poor durability of the coating can lead to an increased manufacturing cost and unreliability for a solar collector operated at a higher temperature. Therefore, a novel nanofluid-based direct absorption solar collector (NDASC) employing uncoated collector tubes has been proposed, and its operating characteristics for medium-temperature solar collection were theoretically and experimentally studied in this paper. CuO/oil nanofluid was prepared and used as working fluid of the NDASC. The heat-transfer mechanism of the NDASC with parabolic trough concentrator was theoretically evaluated and compared with a conventional indirect absorption solar collector (IASC). The theoretical analysis results suggested that the fluid's temperature distribution in the NDASC was much more uniform than that in the IASC, and an enhanced collection efficiency could be achieved for the NDASC operated within a preferred working temperature range. To demonstrate the feasibility of the proposed NDASC, experimental performances of an NDASC and an IASC with the same parabolic trough concentrator were furthermore evaluated and comparatively discussed.
太阳能集热器在热水供应、空间供暖和制冷中的应用对降低建筑能耗起着重要作用。对于传统太阳能集热器,太阳辐射被集热器管道/板壁上的光谱选择性涂层吸收。涂层耐久性差会导致制造成本增加,并且对于在较高温度下运行的太阳能集热器而言可靠性降低。因此,提出了一种采用未涂层集热管的新型基于纳米流体的直接吸收式太阳能集热器(NDASC),本文对其在中温太阳能集热方面的运行特性进行了理论和实验研究。制备了CuO/油纳米流体并将其用作NDASC的工作流体。对带有抛物槽式聚光器的NDASC的传热机理进行了理论评估,并与传统间接吸收式太阳能集热器(IASC)进行了比较。理论分析结果表明,NDASC中流体的温度分布比IASC中的更均匀,并且对于在优选工作温度范围内运行的NDASC可以实现更高的集热效率。为了证明所提出的NDASC的可行性,还对具有相同抛物槽式聚光器的NDASC和IASC的实验性能进行了评估并进行了比较讨论。