使用倾斜 V 形槽光学器件的单元素平面聚光器

IF 6 Q1 ENGINEERING, MULTIDISCIPLINARY
Animesh M. Ramachandran , Adersh Asok
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引用次数: 0

摘要

聚光器被广泛用于解决太阳辐射能量密度有限的难题。然而,传统的聚光器体积庞大、焦距较高、太阳能接受度低,而且由于使用大型成像光学元件,成本高昂。基于波导的平面聚光器(PLC)是为解决这些难题而设计的。它们的工作原理是在入射面收集光线,并将其导引到波导的侧面。然而,现有的聚光器设计大多由多个光学元件组成,因此需要精确定位和点对点太阳跟踪。为了解决这些复杂问题,我们提出了一种基于波导的 PLC 新设计。它的特点是在光学板中简化了倾斜 V 形槽阵列,基本上形成了单一光学元件。这种基于偏斜 V 形槽的新型 PLC (SV-PLC) 引入了一种低浓度(即 10 倍几何浓度 (GC))解决方案,沿一个轴线提供高角度接受能力。本研究旨在确立新颖的设计理念,并通过光线跟踪仿真对设计进行验证、优化和评估。此外,还根据模拟结果,使用激光加工技术在 PMMA 中成功制作了一个功能原型。SV-PLC 的光学特性分析结果表明,其光学效率(OE)约为理论 OE 的一半。随角度变化的光线跟踪结果表明,入射角度小于 15°时,OE 下降幅度较小(10%),而入射角度为 23.5°(即太阳四季角移的一半)时,OE 最大下降幅度为 30%(10 倍 GC 设计)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Single elemental planar light concentrator using skewed V-groove optics

Light concentrators are widely used to address the challenges of solar radiation's limited energy density. However, traditional light concentrators suffer from bulkiness, higher focal length, low solar acceptance, and cost factor due to the usage of large imaging optics elements. Waveguide-based planar light concentrators (PLC) have been engineered as a solution to these challenges. They work by collecting light at the incident face and channeling it to the lateral face of the waveguides. However, the existing PLC designs mostly consist of multiple optics elements, resulting in the need for precise positioning and point-to-point solar tracking. Addressing these complexities, a new design for waveguide-based PLC is presented. It features a simplified array of skewed V-grooves within an optical slab, essentially creating a single elemental optics. This novel skewed V-groove-based PLC (SV-PLC) introduces a low-concentration (i.e., <10X geometric concentration (GC)) solution that offers high angular acceptance along one axis. The current study aims to establish the novel design concept, validate, optimize, and assess the design through the Ray-tracing simulation. Further, based on the simulation results, a functional prototype was successfully fabricated in PMMA using laser machining. The results of the optical characterization of the SV-PLC showed that the Optical Efficiency (OE) was approximately around half the theoretical OE. Angular-dependent ray trace results showed a lower OE drop (<10 %) for incident angles less than 15°, and a maximum drop of 30 % (for a 10X GC design) for an incident angle of 23.5° (i.e., half the angle shift of the sun through seasons).

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来源期刊
Results in Engineering
Results in Engineering Engineering-Engineering (all)
CiteScore
5.80
自引率
34.00%
发文量
441
审稿时长
47 days
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