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A general method to analyze the thermal performance of multi-cavity concentrating solar power receivers

机译:分析多腔聚光太阳能接收器热性能的通用方法

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摘要

Concentrating solar power (CSP) with thermal energy storage has potential to provide grid-scale, on-demand, dispatchable renewable energy. As higher solar receiver output temperatures are necessary for higher thermal cycle efficiency, current CSP research is focused on high outlet temperature and high efficiency receivers. The objective of this study is to provide a simplified model to analyze the thermal efficiency of multi-cavity concentrating solar power receivers. The model calculates an optimal aperture flux that maximizes the local efficiency, constrained by a maximum receiver working temperature. Using this flux, the thermal efficiency, receiver temperature, and heat transfer fluid (HTF) temperature are calculated based upon an optimized flux distribution. The model also provides receiver design and HTF heat transfer requirements to achieve the necessary overall thermal efficiency. From the results, possible HTFs can be investigated to determine which ones are feasible. A case study was performed on a multi-cavity tube receiver design to demonstrate the use of the model. The case study receiver design had an effective absorptivity of 99.8%, and was modeled with conservative values for thermal constraints. It was found that a HTF with a minimum convection coefficient between 250 and 500 W m(-2) K-1, depending on the convective heat transfer to the environment, is necessary to achieve a thermal efficiency greater than 90% for the receiver. The general model can provide a design guideline for attainable thermal efficiencies of multi-cavity concentrating solar power receivers given thermal constraints and heat transfer conditions. (C) 2016 Elsevier Ltd. All rights reserved.
机译:带有热能存储的集中太阳能(CSP)有潜力提供电网规模,按需,可调度的可再生能源。由于更高的太阳能接收器输出温度对于更高的热循环效率是必需的,因此当前的CSP研究集中于高出口温度和高效接收器。这项研究的目的是提供一个简化的模型来分析多腔聚光太阳能接收器的热效率。该模型计算出一个最佳孔径通量,该通量受最大接收器工作温度的约束,从而使局部效率最大化。使用此通量,可以基于优化的通量分布来计算热效率,接收器温度和传热流体(HTF)温度。该模型还提供了接收器设计和HTF传热要求,以实现必要的整体热效率。从结果中,可以研究可能的HTF,以确定哪些可行。对多腔管接收器设计进行了案例研究,以证明该模型的使用。案例研究接收器设计的有效吸收率为99.8%,并使用热约束的保守值进行建模。已经发现,具有最小对流系数在250和500 W m(-2)K-1之间的HTF,对于到达接收器的热效率而言,是必要的,取决于对流向环境的对​​流热传递。通用模型可以为给定热约束和传热条件的多腔集中式太阳能接收器提供可达到的热效率设计指南。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Solar Energy》 |2017年第7期|608-618|共11页
  • 作者单位

    Utah State Univ, Dept Mech & Aerosp Engn, 4130 Old Main Hill, Logan, UT 84322 USA;

    Utah State Univ, Dept Mech & Aerosp Engn, 4130 Old Main Hill, Logan, UT 84322 USA;

    Utah State Univ, Dept Mech & Aerosp Engn, 4130 Old Main Hill, Logan, UT 84322 USA;

    Natl Renewable Energy Lab, Golden, CO 80401 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Concentrated solar power; Multi-cavity receiver; Thermal analysis;

    机译:聚光太阳能;多腔接收器;热分析;

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