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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >The design and performance evaluation of a high-efficient flexible solar air heater based on transparent spacer fabric composite
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The design and performance evaluation of a high-efficient flexible solar air heater based on transparent spacer fabric composite

机译:基于透明间隔织物复合材料的高效柔性太阳能空气加热器的设计与性能评价

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摘要

In this paper, a novel flexible solar air heater (FSAH) has been rationally designed and fully investigated by practical experiments. The main part of the FSAH is an integrated flexible warp-knitted spacer fabric composite, in which spacer filaments are coated with solar energy absorbing materials by the air spraying method. In this system, flexible spacer fabric composite not only works as a solar thermal energy harvesting layer, but also provides airflow channels for energy transmission. By comparison test, it is found that the outlet temperature and thermal efficiency of FSAH were improved by introducing nano-black carbon particles as solar energy absorbing materials coated on the surface of spacer filaments. An analysis of net energy gain and effective efficiency was then carried out and the best thermohydraulic performance of the as-fabricated FSAH was found at the mass flow velocity of 0.037 kg m(-2) s(-1). The optimization experiments demonstrated that with the increase of heater length, the outlet temperature and energy gain of FSAH increased, while their thermal efficiency and effective efficiency decreased. Furthermore, to reduce the heat losses from the top layer to the surrounding ambient, another layer of transparent spacer fabric composite was assembled with the FSAH as a thermal insulation layer and its thermal efficiency and effective efficiency were found to be increased by 20%.
机译:本文采用了一种新颖的柔性太阳能空气加热器(FSAH),由实际实验合理设计和充分研究。 FSAH的主要部分是一款集成的柔性经编性织物复合材料,其中间隔丝通过空气喷涂方法涂有太阳能吸收材料。在该系统中,柔性间隔织物复合材料不仅适用于太阳能热能收集层,而且还提供用于能量传输的气流通道。通过比较试验,发现通过将纳米黑碳颗粒作为涂覆在间隔细丝表面的太阳能吸收材料,改善了FSAH的出口温度和热效率。然后进行了对净能量增益和有效效率的分析,并在0.037kg m(-2)S(-1)的质量流速下发现了由制造的FSAH的最佳热液态化性能。优化实验表明,随着加热器长度的增加,FSAH的出口温度和能量增益增加,而其热效率和有效效率降低。此外,为了将来自顶层的热损失从顶层降低到周围的环境温度,将另一层透明间隔织物复合材料用FSAH组装成作为绝热层,并且发现其热效率和有效效率增加20%。

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