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Development of W–SiO2 and Nb–TiO2 solar absorber coatings for combined heat and power systems at intermediate operation temperatures

机译:在中间工作温度下开发用于热电联产的W–SiO2和Nb–TiO2太阳吸收体涂料

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摘要

Two new absorber coatings for mid-temperature operation (300–350 1C) in collectors for solar thermal electricity plants are presented in this study. The absorbers consist of two cermet layers of either W–SiO2 or Nb–TiO2, deposited on a molybdenum infrared reflector and coated with an antireflection layer of silicon oxide. The optimization of the optical performance was made in two steps. First, the layer structure was optimized in model calculations. The optical constants used in this modelling were derived directly from sputtered films of the cermet constituents using reflectance and transmittance measure- ments. The absorber coatings were then sputter-deposited using parameters from the modelling. The results show good agreement between modelled and sputtered optical performance evaluated as solar absorptance and thermal emittance at 350 1C. The optimal values reached for W–SiO2 was 0.91 in combination with 0.08 and 0.93 in combination with 0.09 for Nb–TiO2. The materials characterization from XRD, AES and TEM shows that the composite coatings contain nano-metal inclusions, meaning that they are cermet coatings. Scratch tests show that the coatings adhere well to the substrate of stainless steel. Temperature testing at 350 1C in vacuum for up to 1500 h shows that both coatings are stable under such conditions. Only a slight change occurs during the first 72 h that decreases the emittance but does not change the solar absorptance. ERDA confirms that there is no detectable level of ion migration between layers, only a small decrease in hydrogen content was observed, which indicates outgassing.
机译:本研究介绍了两种新的吸收剂涂料,用于太阳能热电厂集热器的中温操作(300–350 1C)。吸收剂由W-SiO2或Nb-TiO2的两个金属陶瓷层组成,沉积在钼红外反射器上,并涂有氧化硅抗反射层。光学性能的优化分两个步骤进行。首先,在模型计算中优化了层结构。该模型中使用的光学常数是使用反射率和透射率测量直接从金属陶瓷成分的溅射膜中得出的。然后使用来自模型的参数对吸收体涂层进行溅射沉积。结果表明,建模和溅射光学性能在350 1C时的太阳吸收率和热发射率之间具有良好的一致性。对于W-SiO2,Nb-TiO2的最佳值为0.91,与0.08的组合,以及0.93,与0.09的组合,为0.09。 XRD,AES和TEM的材料表征表明,复合涂层包含纳米金属夹杂物,这意味着它们是金属陶瓷涂层。划痕测试表明,涂层与不锈钢基材的粘附性很好。在真空中于350 1C下进行的长达1500小时的温度测试表明,两种涂层在这种条件下都是稳定的。在最初的72小时内仅发生轻微变化,该变化会降低发射率,但不会改变太阳吸收率。 ERDA确认各层之间没有可检测到的离子迁移水平,仅观察到氢含量的小幅下降,这表明发生了放气。

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