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Theoretical and experimental analysis of an innovative dual-axis tracking linear Fresnel lenses concentrated solar thermal collector

机译:创新双轴跟踪线性菲涅耳透镜集中太阳能热集电极的理论与实验分析

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摘要

Linear concentrating solar thermal systems offer a promising method for harvesting solar energy. In this paper, a model for a novel linear Fresnel lens collector with dual-axis tracking capability is presented. The main objective is to determine the performance curve of this technology by means of both experiment and theoretical analysis. A mathematical model including the optical model of the concentrator and the heat transfer model of the receiver pipe was developed. This tool was validated with experimental data collected using a proof of concept prototype installed in Bourne, UK. The performance curve of the collector was derived for temperatures between 40 °C and 90 °C. The results show that the global efficiency of the collector is limited to less than 20%. The energy losses have been analysed. The optical losses in the lens system accounts for 47% of the total energy dissipated. These are due to absorption, reflection and diffraction in the Fresnel lenses. Furthermore manufacturing error in the lens fabrication has to be considered. One third of the solar radiation collected is lost due to the low solar absorptance of the receiver pipe. Thermal radiation and convection accounts for 6% of the total as relatively low temperatures (up to 90 °C) are involved. In order to increase the performance of the system, it is recommended to install an evacuated receiver and to insulate the recirculation system. Considering data from manufacturers, these improvements could increase the global efficiency up to 55%. Utilising the results from this work, there is the intention of building an improved version of this prototype and to conduct further tests.
机译:线性集中太阳能热系统提供了一种充满希望收获太阳能的方法。本文提出了一种具有双轴跟踪能力的新型线性菲涅耳透镜集电极的模型。主要目的是通过实验和理论分析来确定该技术的性能曲线。开发了一种数学模型,包括集中器的光学模型和接收管的传热模型。使用在英国Bourne安装的概念原型的证据收集的实验数据验证了该工具。收集器的性能曲线衍生出40°C和90°C之间的温度。结果表明,收集器的全球效率仅限于小于20%。能量损失已经分析。镜头系统中的光学损耗占总能量耗散的47%。这些是由于菲涅耳透镜中的吸收,反射和衍射。此外,必须考虑镜片制造中的制造误差。由于接收管的太阳能吸收率低,收集的三分之一的太阳辐射损失。随着涉及相对较低的温度(高达90°C),热辐射和对流占总量的6%(最多90°C)。为了提高系统的性能,建议安装一个抽空的接收器并使再循环系统隔离。考虑制造商的数据,这些改进可能会将全球效率提高到55%。利用这项工作的结果,有意建立这种原型的改进版本并进行进一步的测试。

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