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Thermal Analysis of a Solar Cavity Receiver.

机译:太阳腔接收器的热分析。

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摘要

Design of solar thermal cavity receivers has been a subject of interest for the renewable energy community. The ability to harvest solar energy through fluid-thermal interactions, not only provides a viable, efficient, and environmentally friendly source of power, but also one which reduces the cost of implementing and generating the power needs of today.;The following investigation develops a simulation of the thermal and heat transfer behavior of a solar cavity receiver. The model constructed treats the convective and radiative exchange as the main component to energy capture of solar energy within the system.;The results show that tightly packed cavity receivers exhibit higher working fluid temperatures for both laminar and turbulent conditions in comparison to medium and loosely packed cavity receivers. Tightly packed cavity receivers demonstrate net heat transfer distributions with local maxima, with highest net heat transfer in the middle of the cavity receiver, in comparison to loosely packed systems, which have decreasing linear-like net heat transfer distributions with increasing fractional cavity receiver depth for both laminar and turbulent flow conditions.;It is demonstrated that further increasing the aperture size of the cavity receiver beyond 60 cm, results in lower working fluid temperatures and net heat transfer distributions for varying aperture size for both laminar and turbulent conditions. It was demonstrated that decreasing helical pipe size of the cavity receiver results in higher working fluid temperatures and net heat transfer rates for both laminar and turbulent conditions.;It was based on these observations and conclusions that an optimal cavity receiver design was investigated for three popular heat transfer fluids. A tightly packed cavity receiver with minimized aperture and helical pipe diameters was chosen as the optimal cavity receiver for the three popular heat transfer fluids.
机译:太阳能热腔接收器的设计已成为可再生能源界关注的主题。通过流体-热相互作用收集太阳能的能力,不仅提供了一种可行,高效且对环境友好的能源,而且还降低了当今实现和产生电力需求的成本。太阳腔接收器的热和热传递行为的模拟。构建的模型将对流和辐射交换视为系统内太阳能能量捕获的主要组成部分;结果表明,与中等和松散填充相比,紧密堆积的腔体接收器在层流和湍流条件下均表现出更高的工作流体温度腔体接收器。与松散堆积的系统相比,紧密堆积的腔体接收器表现出的净传热分布具有局部最大值,在腔体接收器的中间具有最高的净传热,后者的线性状净传热分布逐渐减小,分数腔体接收器的深度逐渐增加。事实证明,进一步增加空腔接收器的孔径尺寸超过60 cm,会导致较低的工作流体温度和净热传递分布,从而改变层流和湍流条件。结果表明,减小腔接收器的螺旋管尺寸会导致层流和湍流条件下更高的工作流体温度和净传热速率。基于这些观察和结论,对三种流行的腔接收器的最佳设计进行了研究传热流体。对于三种常见的传热流体,选择具有最小孔径和螺旋管直径的紧密堆积腔体接收器作为最佳腔体接收器。

著录项

  • 作者

    Singh, Yuvraj.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Alternative Energy.
  • 学位 M.S.
  • 年度 2012
  • 页码 88 p.
  • 总页数 88
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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