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Novel solar cogeneration trough system based on stretched microstructured mylar film

机译:基于拉伸微结构聚酯薄膜的新型太阳能热电联产槽系统

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Hybrid CSP / CPV (Concentrating Solar Power / Concentration Photovoltaic) systems provide a good alternative to traditional CPV systems or CSP trough architectures. Such systems are often described as solar cogeneration systems. Trough systems use mainly the IR portion of the spectrum in order to heat up a pipe in which water is circulating. CPV systems use only the visible portion of the spectrum to produce the photo-voltaic conversion. Due to the achromatic nature of traditional thermal trough CSP systems, it is very unlikely that a CPV system can be integrated with a CSP system, even a low concentration CPV system (LCPV). We propose a novel technique to implement a low concentration CSP/LCPV system which relies on commercially available solar trough concentrators / trackers that use reflective stretched Mylar membranes. However, here the Mylar is embossed with microstructures that act only on the visible portion of the spectrum, leaving the infrared part of the solar spectrum unperturbed. This architecture has many advantages, such as: the existing Mylar-based thermal trough architecture is left unperturbed for optimal thermal conversion, with linear strips of PV cells located a few inches away from the central water pipe; the infrared radiation is focused on the central pipe, away from the PV cells, which remain relatively cool compared to conventional LCPV designs (only visible light (the PV convertible part of the solar spectrum) is diffracted onto the PV cell strips); and the Mylar sheets can be embossed by conventional roll-to-roll processes, with a one-dimensional symmetric micro-structured pattern. We show how the positive master elements are designed and fabricated over a small area (using traditional IC wafer fabrication techniques), and how the Mylar sheets are embossed by a recombined negative nickel shim. We also show that such a system can efficiently filter the visible spectrum and divert it onto the linear strips of PV cells, while leaving the infrared part of the spectrum un-perturbed, heating up the water pipe
机译:混合式CSP / CPV(聚光太阳能/聚光光伏)系统是传统CPV系统或CSP槽式架构的良好替代方案。这种系统通常被称为太阳能热电联产系统。槽式系统主要使用光谱的红外部分,以加热循环水的管道。 CPV系统仅使用光谱的可见部分来产生光电转换。由于传统热槽式CSP系统的消色差性质,CPV系统与CSP系统甚至是低浓度CPV系统(LCPV)集成的可能性很小。我们提出了一种新技术来实施低浓度CSP / LCPV系统,该系统依赖于使用反射拉伸聚酯薄膜的市售太阳槽聚光器/跟踪器。但是,这里的聚酯薄膜上有微结构浮雕,这些微结构仅作用于光谱的可见部分,而使太阳光谱的红外部分不受干扰。这种架构具有许多优势,例如:现有的基于聚酯薄膜的热槽架构不受干扰,可以实现最佳的热转换,线性光伏电池条位于距中央水管几英寸的位置;红外辐射集中在远离PV电池的中央管道上,与传统的LCPV设计相比,它保持相对凉爽(仅可见光(太阳光谱的PV可转换部分)被衍射到PV电池条上);聚酯薄膜片可通过常规的卷对卷方法压花,具有一维对称的微结构图案。我们展示了如何在小面积上(使用传统的IC晶圆制造技术)设计和制造正极主元件,以及如何通过复合的负极镍垫片压印Mylar板材。我们还表明,这样的系统可以有效过滤可见光谱并将其转移到光伏电池的线性条带上,同时使光谱的红外部分不受干扰,从而加热水管

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