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Selective solar absorber coatings on receiver tubes for CSP - energy-efficient production process by sol-gel dip-coating and subsequent induction heating

机译:用于CSP的接收管上的选择性太阳能吸收剂涂层-通过溶胶-凝胶浸涂和随后的感应加热进行的节能生产过程

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The energy efficiency of production processes for components of solar energy systems is an important issue. Other factors, which are important for the production of black selective solar coatings include production speed, cycle time and homogeneity of the coating, as well as the minimization of the quantity of the needed chemical precursors. In this paper a new energy-efficient low-cost production process is presented for production of optically selective coatings for solar thermal absorbers. The used method to produce such coatings is sol-gel dip-coating for which all the solutions have been synthetized at the Solar Energy and Building Physics Laboratory of EPFL. The used precursors are tetraethyl orthosilicate, manganese acetate tetrahydrate, copper chloride dihydrate and cobalt chloride hexahydrate. Solutions were obtained by dissolving these precursors in a solution based on a mixture of absolute ethanol, nitric acid and demineralized water. The layers deposited on sheetlike substrates were annealed in a benchtop furnace. For 2 meter long austenitic stainless steel tubes, a novel, fast and energy-efficient process based on induction heating was developed for the thermal annealing. An induction coil passes along the tube. An alternating current flowing in the coil induces a current in the tube. By resistive heating, the temperature of both the metallic tube wall and the deposited film increases. The homogeneity of the temperature distribution of the tube after a single passage of the coil was monitored by infrared imaging. The optical and morphological properties of the Cu-Co-Mn-Si-0 based triple layer have been characterized by spectrophotometry, transmission electron microscopy (TEM), time-of-flight secondary ion mass spectroscopy (ToF-SIMS) and X-ray photoelectron spectroscopy (XPS). After optimization of the multilayer design, a solar absorptance of 0.95 and a thermal emissivity of 0.12 at 100°C have been achieved. The intermediate Cu-Co-Mn-Si-0 layer was analyzed by transmission electron microscopy. The likewise obtained images show an agglomeration of crystalline grains with 5-20 nm in diameter. Therefore, we can consider that the Cu-Co-Mn-Si-0 phase is nanocrystalline. In order to roughly estimate the corrosion resistance of the coating in an acidic environment, a simple corrosion test in harsh conditions confirmed the durability of the novel sol-gel coating. Moreover, the excellent stability at elevated temperatures in ambient air makes the coating an interesting candidate for solar applications involving concentrated solar radiation, such as the generation of solar electricity (concentrated solar power), industrial process heating and solar cooling. For that reason, prototype coatings consisting of stacks of three individual layers were deposited on 2 meter long stainless steel tubes.
机译:太阳能系统组件生产过程的能源效率是一个重要问题。对于黑色选择性太阳能涂层的生产而言重要的其他因素包括生产速度,循环时间和涂层的均匀性,以及所需化学前体数量的最小化。在本文中,提出了一种新的节能,低成本的生产工艺,用于生产太阳能吸热器的光学选择性涂层。用于生产这种涂料的方法是溶胶-凝胶浸涂,其所有溶液均已在EPFL的太阳能和建筑物理实验室合成。所用的前体是原硅酸四乙酯,四水合乙酸锰,二水合氯化铜和六水合氯化钴。通过将这些前体溶解在基于无水乙醇,硝酸和软化水的混合物的溶液中来获得溶液。在台式炉中对沉积在片状基材上的层进行退火。对于2米长的奥氏体不锈钢管,开发了一种基于感应加热的新颖,快速且节能的方法来进行热退火。感应线圈沿着管子穿过。在线圈中流动的交流电在管中感应出电流。通过电阻加热,金属管壁和沉积膜的温度均升高。在线圈单次通过之后,通过红外成像监测管的温度分布的均匀性。通过分光光度法,透射电子显微镜(TEM),飞行时间二次离子质谱(ToF-SIMS)和X射线对Cu-Co-Mn-Si-0基三层光学和形态特性进行了表征光电子能谱(XPS)。在优化多层设计之后,在100°C下获得了0.95的太阳吸收率和0.12的热发射率。通过透射电子显微镜分析中间Cu-Co-Mn-Si-0层。同样获得的图像显示出直径为5-20 nm的晶粒的团聚。因此,我们可以认为Cu-Co-Mn-Si-0相是纳米晶。为了粗略估计该涂层在酸性环境中的耐腐蚀性,在苛刻条件下进行的简单腐蚀试验证实了该新型溶胶-凝胶涂层的耐用性。此外,环境空气在高温下的优异稳定性使该涂层成为涉及聚光太阳辐射的太阳能应用中令人关注的候选材料,例如太阳能发电(集中式太阳能)的产生,工业过程加热和太阳能冷却。因此,将由三层单独的堆叠组成的原型涂层沉积在2米长的不锈钢管上。

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