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Optical characterization and modeling of coatings intended as high temperature solar selective absorbers

机译:涂层的光学表征和涂层建模,以预期高温太阳能选择性吸收器

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SiCNH thin coatings synthesized by Plasma Enhanced Chemical Vapor Deposition (PECVD) are considered as high temperature ceramic materials for solar selective multilayer absorbers. As indicated by ellipsometry and spectrophotometry measurements, their optical characteristics make them suitable as solar absorbing and antireflective coatings in multilayer stacks and/or ceramic-metal composites (cermets). These measurements gave access to spectral values of complex refractive index N = n + ik, reflectance R and transmittance T of the coatings. R and T were also modeled from N, based on Fresnel equations, and a good agreement was found between simulated and measured reflectance in the visible region. A transfer matrix method was then applied to predict the optical response (if, T) of virtual multilayer stacks including SiCNH materials. W-SiCNH cermets were also considered as absorptive layers in these stacks and their refractive indices were calculated using Bruggeman effective medium approximation theory. Solar absorptance a_s and thermal emittance s(T) were estimated from simulated reflectance. Layer thicknesses and cermet composition were optimized using CODE software and a MATLAB in-house code, so as to maximize solar-heat conversion efficiency which relied on high a_s (up to 95%) and low s (down to 6% at 500°C). The corresponding global yield which could be attained in typical Fresnel and central tower solar plants using these selective coatings was also calculated and compared to current technology.
机译:通过等离子体增强化学气相沉积(PECVD)合成的SiCnH薄涂层被认为是用于太阳能选择性多层吸收剂的高温陶瓷材料。如椭圆形测量和分光光度法测量所示,它们的光学特性使它们适合于多层堆叠和/或陶瓷 - 金属复合材料(金属金属复合材料中的太阳能吸收和抗反射涂层。这些测量得到了对涂层的复合折射率n = n + ik,反射率R和透射率T的频谱值。还基于菲涅耳方程的N模型R和T,并且在可见区域中的模拟和测量反射率之间发现了良好的一致性。然后应用转移矩阵方法以预测虚拟多层堆叠的光学响应(IF,T),包括SICNH材料。 W-SiCNH CERMER也被认为是这些堆叠中的吸收层,并且使用Brugmeman有效介质近似理论计算它们的折射率。太阳能吸收率A_S和热发射率S(T)估计了模拟反射率。使用代码软件和MATLAB内部代码进行了优化了层厚度和金属陶瓷组成,以最大限度地提高太阳能转换效率,依赖于高A_S(高达95%)和低S(低至500°C下的6%) )。还计算了使用这些选择性涂层的典型菲涅耳和中央塔太阳能厂中获得的相应全球产量,并与当前技术进行比较。

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