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Optical and Thermodynamic Analysis and Optimization of a Novel Solar Concentrating System for Distributed Power Generation.

机译:用于分布式发电的新型太阳能聚光系统的光学和热力学分析与优化。

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摘要

A novel central receiver power system utilizing linked-tracking heliostats is analyzed for distributed-scale concentrated solar power. Smaller linkage groupings are typically found to have a lower impact on performance, with a 1x2 linkage causing a maximum system efficiency reduction of 1.64% in December, and a 5x5 linkage causing a 29.5% reduction. The results of the optical analysis are used as inputs to a thermodynamic analysis of thermodynamic power cycles. The concentrated flux drives a Brayton cycle operating with air, CO2 , He, or H2. A combined Brayton-Rankine cycle is also considered with organic bottoming. Average 7-hour daily efficiencies are calculated for each month. The maximum daily average solar-to-electric conversion efficiency is calculated to be 16.2% with a single CO2 Brayton cycle and a 1 (east-west) x 2 (north-south) linkage setup. A peak system conversion efficiency of 18.2% was calculated when using R-141b as the working fluid in a bottoming cycle.
机译:分析了利用链接跟踪定日镜的新型中央接收器电源系统,以获取分布式集中式太阳能。通常,较小的链接分组对性能的影响较小,其中1x2链接导致12月最大系统效率降低1.64%,5x5链接导致降低29.5%。光学分析的结果用作热力学功率循环的热力学分析的输入。集中的通量驱动以空气,CO2,He或H2运转的布雷顿循环。布雷顿-朗肯循环也被认为是有机的底部。每个月计算平均7个小时的每日效率。在单个CO2布雷顿循环和1(东西向)x 2(南北)链接设置的情况下,最大日平均太阳能到电的转换效率经计算为16.2%。当在底部循环中使用R-141b作为工作流体时,计算得出的系统峰值转化效率为18.2%。

著录项

  • 作者

    Dunham, Marc Tyler Deo.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Engineering Mechanical.
  • 学位 M.S.
  • 年度 2012
  • 页码 110 p.
  • 总页数 110
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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