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Photovoltaic Concentrator Optical System Design: Solar Energy Engineering from Physics to Field

机译:光伏聚光器光学系统设计:从物理到现场的太阳能工程

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摘要

This dissertation describes the design, development, and field validation of a concentrator photovoltaic (CPV) solar energy system. The challenges of creating a highly efficient yet low-cost system architecture come from many sources. The solid-state physics of photovoltaic devices present fundamental limits to photoelectron conversion efficiency, while the electrical and thermal characteristics of widely available materials limit the design arena. Furthermore, the need for high solar spectral throughput, evenly concentrated sunlight, and tolerance to off-axis pointing places strict illumination requirements on the optical design. To be commercially viable, the cost associated with all components must be minimized so that when taken together, the absolute installed cost of the system in kWh is lower than any other solar energy method, and competitive with fossil fuel power generation. The work detailed herein focuses specifically on unique optical design and illumination concepts discovered when developing a viable commercial CPV system. By designing from the ground up with the fundamental physics of photovoltaic devices and the required system tolerances in mind, a select range of optical designs are determined and modeled. Component cost analysis, assembly effort, and development time frame further influence design choices to arrive at a final optical system design. When coupled with the collecting mirror, the final optical hardware unit placed at the focus generates more than 800W, yet is small and lightweight enough to hold in your hand. After fabrication and installation, the completed system's illumination, spectral, and thermal performance is validated with on-sun operational testing.
机译:本文介绍了聚光光伏(CPV)太阳能系统的设计,开发和现场验证。创建高效而低成本的系统架构的挑战来自许多方面。光伏器件的固态物理学对光电子转换效率提出了根本限制,而广泛使用的材料的电学和热学特性限制了设计领域。此外,对高太阳光谱通量,均匀聚集的太阳光的需求以及对偏轴指向的耐受性对光学设计提出了严格的照明要求。为了在商业上可行,必须将与所有组件相关的成本降到最低,以便总和计算得出,该系统的绝对安装成本(kWh)低于任何其他太阳能方法,并且与化石燃料发电相比具有竞争力。在开发可行的商用CPV系统时,本文详细介绍的工作专门针对独特的光学设计和照明概念。通过重新设计光伏设备的基本物理原理并考虑所需的系统公差,可以确定和建模光学设计的选定范围。组件成本分析,组装工作和开发时间框架会进一步影响设计选择,以进行最终的光学系统设计。与聚光镜配合使用时,位于焦点处的最终光学硬件单元产生的功率超过800W,但又小又轻,足以握在手中。在制造和安装后,完整的系统的照明,光谱和热性能已通过日间运行测试进行了验证。

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    Coughenour Blake Michael;

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  • 年度 2014
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  • 原文格式 PDF
  • 正文语种 en_US
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