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An optical performance comparison of three concentrating solar power collector designs in linear Fresnel, parabolic trough, and central receiver

机译:线性菲涅耳,抛物线槽和中央接收器中三种聚光太阳能集热器设计的光学性能比较

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The optical performance of a concentrating solar power (CSP) collector is critical to the overall efficiency of the system. This study presents a detailed optical comparison between three representative CSP collector designs including linear Fresnel, parabolic trough, and central-receiver technologies. Optical models are implemented in SolTrace, which is ray-tracing software developed at the National Renewable Energy Laboratory. The ray-tracing algorithm is used to calculate a collector's design-point performance as well as its incidence-angle modifiers to evaluate the collector performance at any sun position during a typical meteorological year. The efficiency over a one-year period is then analyzed based on ray-tracing results. Using China Lake (California) as an example, the annual optical efficiency is 60% for the selected parabolic trough collector, 52% for the selected central-receiver technology, and 40% for the selected linear Fresnel collector. The parabolic trough has the highest optical performance among all. The selected central-receiver technology provides the most consistent seasonal production profile over the course of the year due to its two-axis-tracking ability but would suffer most from the increasing solar collector optical error. It is also shown that a dramatic cost reduction is required for the selected linear Fresnel technology to be competitive in the future energy market. Sensitivity of three CSP technologies to the deployment locations and the overall optical-error magnitude is also examined through annual performance analysis. The results will provide insights into a better understanding on inherent technical aspects of different CSP technologies.
机译:聚光太阳能(CSP)收集器的光学性能对于系统的整体效率至关重要。这项研究提出了三种代表性的CSP收集器设计之间的详细光学比较,包括线性菲涅耳,抛物槽和中央接收器技术。光学模型在SolTrace中实现,SolTrace是国家可再生能源实验室开发的光线跟踪软件。光线跟踪算法用于计算收集器的设计点性能以及其入射角修正值,以评估典型气象年中任何太阳位置的收集器性能。然后根据光线跟踪结果分析一年内的效率。以加利福尼亚州的中国湖为例,所选抛物线形槽式收集器的年光学效率为60%,所选中央接收器技术的年度光学效率为52%,所选线性菲涅尔收集器的年光学效率为40%。抛物线槽的光学性能最高。所选的中央接收器技术由于具有两轴跟踪功能,因此在一年中提供了最一致的季节性生产情况,但受太阳能收集器光学误差增加的影响最大。还表明,要使所选的线性菲涅尔技术在未来的能源市场中具有竞争力,就需要大幅降低成本。还通过年度性能分析检查了三种CSP技术对部署位置的敏感性以及总体光学误差幅度。结果将为深入了解不同的CSP技术的固有技术方面提供见解。

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