聚光太阳能接收器新型捕光管板的光-热流体耦合及结构分析

Jesus D. Ortega, J. Christian, J. Yellowhair, C. Ho
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引用次数: 7

摘要

用于聚光太阳能发电的传统管状接收器是用管子连接到歧管形成面板;它们依次排列成圆柱形或矩形。以前和现在的管状接收器,例如用于太阳能一号、太阳能二号和最近的艾文帕太阳能发电厂的管状接收器,都使用了黑色涂料涂层来增加接收器的太阳能吸收率。然而,随着时间的推移,这些涂层会降解,必须重新涂抹,增加了接收器的维护成本。本文介绍了新型接收器管状板的热效率评估,该管状板通过将每个板中的管排列成独特的几何构型而产生光捕获效应,从而具有更高的有效太阳吸收率。同样,计算了入射角对太阳能有效吸收率和热效率的影响。这项工作的总体目标是在不使用吸收涂层的情况下实现约90%的有效太阳吸收率和85%以上的热效率。考虑到熔盐和超临界二氧化碳接收器的热和压力负载要求,最初提出了几种面板几何形状,并根据结构分析进行了选择。使用SolTrace的光线追踪建模功能,评估了所选管几何形状和面板配置的有效太阳吸收率。利用ANSYS Fluent将计算流体力学与射线追踪结果相结合,对热效率进行了评估。与基本情况分析(扁平管状面板)相比,新型管状面板显示出有效太阳能吸收率和热效率提高了几个百分点。
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Coupled optical-thermal-fluid and structural analyses of novel light-trapping tubular panels for concentrating solar power receivers
Traditional tubular receivers used in concentrating solar power are formed using tubes connected to manifolds to form panels; which in turn are arranged in cylindrical or rectangular shapes. Previous and current tubular receivers, such as the ones used in Solar One, Solar Two, and most recently the Ivanpah solar plants, have used a black paint coating to increase the solar absorptance of the receiver. However, these coatings degrade over time and must be reapplied, increasing the receiver maintenance cost. This paper presents the thermal efficiency evaluation of novel receiver tubular panels that have a higher effective solar absorptance due to a light-trapping effect created by arranging the tubes in each panel into unique geometric configurations. Similarly, the impact of the incidence angle on the effective solar absorptance and thermal efficiency is evaluated. The overarching goal of this work is to achieve effective solar absorptances of ~90% and thermal efficiencies above 85% without using an absorptance coating. Several panel geometries were initially proposed and were down-selected based on structural analyses considering the thermal and pressure loading requirements of molten salt and supercritical carbon-dioxide receivers. The effective solar absorptance of the chosen tube geometries and panel configurations were evaluated using the ray-tracing modeling capabilities of SolTrace. The thermal efficiency was then evaluated by coupling computational fluid dynamics with the ray-tracing results using ANSYS Fluent. Compared to the base case analysis (flat tubular panel), the novel tubular panels have shown an increase in effective solar absorptance and thermal efficiency by several percentage points.
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