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Performance analysis of a closed-cycle ocean thermal energy conversion system with solar preheating and superheating.

机译:具有太阳能预热和过热的闭环海洋热能转换系统的性能分析。

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摘要

The research presented in this thesis provides thermodynamic insights on the potential advantages and challenges of adding a solar thermal collection component into ocean thermal energy conversion (OTEC) power plants. In that regard, the article reports the off-design performance analysis of a closed-cycle OTEC system when a solar thermal collector is integrated as an add-on preheater or superheater into the system.;The present research aims to examine the system-level effects of integrating solar thermal collection with an existing OTEC power plant in terms of power output and efficiency. To this end, the study starts with the design-point analysis of a closed-cycle OTEC system with a 100 kW gross power production capacity. The numerically designed OTEC system serves as an illustrative base which lays the ground for thermodynamic analysis of off-design operation when solar thermal collection is integrated. Two methods that make use of solar energy are considered in this research. Firstly, an add-on solar thermal collector is installed in the system in order to preheat the surface seawater before it enters the evaporator. The second way considered is directly superheating the working fluid between the evaporator and the turbine with the add-on solar thermal collector. Numerical analysis is conducted to predict the change of performance (i.e., net power and efficiency) within the OTEC system when solar collection is integrated as a preheater/superheater. Simulated results are presented to make comparison of the improvement of system performance and required collector effective area between the two methods. In the conclusion, possible ways to further improve the solar collector efficiency; hence the overall thermal efficiency of the combined system are suggested.;Obtained results reveal that both preheating and superheating cases increase the net power generation by 20-25% from the design-point. However, the preheating case demands immense heat load on the solar collector due to the huge thermal mass of the seawater, being less efficient thermodynamically. Adverse environmental impacts due to the increase of seawater temperature are also of concern. The superheating case increases the thermal efficiency of the system from 1.9 % to ~3%, about 60% improvement, suggesting that it should be a better and more effective approach in improving a closed-cycle OTEC system.
机译:本文提出的研究提供了将热能收集组件添加到海洋热能转换(OTEC)发电厂中的潜在优势和挑战的热力学见解。在这方面,本文报道了将太阳能集热器作为附加的预热器或过热器集成到系统中时,闭环OTEC系统的非设计性能分析。本研究旨在研究系统级在功率输出和效率方面,将太阳能集热与现有的OTEC电厂相集成的效果。为此,研究从设计总分析能力为100 kW的闭环OTEC系统开始。数值设计的OTEC系统可作为说明性基础,当集成了太阳热能收集时,可为非设计运行的热力学分析奠定基础。在这项研究中考虑了两种利用太阳能的方法。首先,在系统中安装了一个附加的太阳能集热器,以便在表层海水进入蒸发器之前对其进行预热。考虑的第二种方法是使用附加的太阳能集热器直接使蒸发器和涡轮之间的工作流体过热。当将太阳能收集器集成为预热器/过热器时,进行数值分析以预测OTEC系统内的性能(即净功率和效率)变化。给出了仿真结果,以比较两种方法之间系统性能的改进和所需的收集器有效面积。综上所述,有可能进一步提高集热器效率。获得的结果表明,从设计角度来看,预热和过热情况均会使净发电量增加20-25%。但是,由于海水的巨大热质量,预热箱需要在太阳能集热器上施加巨大的热负荷,热力学效率较低。由于海水温度升高而产生的不利环境影响也值得关注。过热的情况将系统的热效率从1.9%提高到〜3%,提高了约60%,这表明它应该是改善闭环OTEC系统的更好,更有效的方法。

著录项

  • 作者

    Aydin, Hakan.;

  • 作者单位

    University of Rhode Island.;

  • 授予单位 University of Rhode Island.;
  • 学科 Mechanical engineering.;Energy.
  • 学位 M.S.
  • 年度 2013
  • 页码 81 p.
  • 总页数 81
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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