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Review of physical vapor deposited (PVD) spectrally selective coatings for mid- and high- temperature solar thermal applications

机译:审查用于中高温太阳能热应用的物理气相沉积(PVD)光谱选择性涂层

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摘要

Solar energy is the most abundant source of renewable energy. The direct method of harnessing solar energy is the solar thermal conversion method using solar absorbers. The absorbers are coated with solar selective coatings with high absorptance and low thermal emittance. Spectrally selective coatings which are stable up to temperatures  300C (in air and vacuum) have been developed in the past. These coatings are mainly deposited from wet chemical routes (e.g., electrodeposition) and have been reviewed widely in the literature. Because of the environmental issues as well as low thermal stability of these wet chemical deposited coatings, researchers all over the world started looking for other alternative routes such as physical vapor deposited (PVD) coatings. A great deal of research has been carried out since 1990s to develop PVD coatings for both mid- and high- temperature applications. The mid-temperature coatings are used mainly for solar hot water and industrial process heat applications, whereas, the high- temperature absorber coatings are used in concentrating solar power systems for solar thermal power generation. It is well recognized that in order to increase the efficiency of solar thermal power plants, solar selective coatings with high thermal stability are required. In recent years, significant efforts have been made in the field of solar selective coatings to achieve high solar absorptance and low thermal emittance at higher temperatures (T  400C). Transition metal based cermets have emerged as novel high temperature solar selective coatings, which are currently being used for solar thermal power plants for electricity generation. Solar selective coatings based on transition metal nitrides, oxides and oxynitrides also hold great potential for high- temperature applications because of their excellent mechanical and optical properties, which are yet to be commercialized. In this review, we present the state-of-the-art of the physical vapor deposited solar selective coatings used for solar thermal applications with an emphasis on sputter deposited coatings for high- temperature applications. A detailed survey, covering the period 1970-present, has been made for the PVD deposited solar selective coatings with high absorptance and low emittance. This review article also describes in detail about the commercially available PVD coatings for flat-plate/evacuated tube collectors and solar thermal power generation applications.
机译:太阳能是最丰富的可再生能源。利用太阳能的直接方法是使用太阳能吸收器的太阳能热转换方法。吸收器涂有具有高吸收率和低热辐射率的太阳能选择性涂层。过去已经开发出在高达300C的温度下(在空气和真空中)稳定的光谱选择涂层。这些涂层主要是通过湿化学路线(例如电沉积)沉积的,并且在文献中已有广泛的评论。由于这些湿化学沉积涂层的环境问题以及较低的热稳定性,全世界的研究人员开始寻找其他替代途径,例如物理气相沉积(PVD)涂层。自1990年代以来,已经进行了大量研究,以开发适用于中高温应用的PVD涂料。中温涂料主要用于太阳能热水和工业过程热应用,而高温吸收剂涂料则用于聚光太阳能发电系统以产生太阳能。众所周知,为了提高太阳能热电厂的效率,需要具有高热稳定性的太阳能选择性涂层。近年来,在太阳能选择性涂料领域已经做出了巨大的努力,以在较高的温度(T400C)下实现高的太阳能吸收率和低的热辐射率。基于过渡金属的金属陶瓷已经作为新型的高温太阳能选择性涂层出现,目前已用于太阳能热电厂发电。基于过渡金属氮化物,氧化物和氧氮化物的太阳能选择性涂层,由于其优异的机械和光学性能,在高温应用中也具有很大的潜力,尚待商业化。在这篇综述中,我们介绍了用于太阳能热应用的物理气相沉积太阳能选择性涂层的最新技术,重点是用于高温应用的溅射沉积涂层。对覆盖率高,发射率低的PVD沉积太阳能选择性涂层进行了详细调查,涵盖了1970年至今。这篇评论文章还详细介绍了用于平板/真空管集热器和太阳能热发电应用的商用PVD涂层。

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