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First and second law analysis of Organic Rankine Cycle.

机译:有机朗肯循环的第一定律和第二定律分析。

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摘要

Many industrial processes have low-temperature waste heat sources that cannot be efficiently recovered. Low grade waste heat has generally been discarded by industry and has become an environmental concern because of thermal pollution. This has led to the lookout for technologies which not only reduce the burden on the non-renewable sources of energy but also take steps toward a cleaner environment.; One approach which is found to be highly effective in addressing the above mentioned issues is the Organic Rankine Cycle (ORC), which can make use of low-temperature waste heat to generate electric power. Similar in principle to the conventional cycle, ORC is found to be superior performance-wise because of the organic working fluids used in the cycle.; The focus of this study is to examine the ORC using different types of organic fluids and cycle configurations. These organic working fluids were selected to evaluate the effect of the fluid boiling point temperature and the fluid classification on the performance of ORCs. The results are compared with those of water under similar conditions. In order to improve the cycle performance, modified ORCs are also investigated. Regenerative ORCs are analyzed and compared with the basic ORC in order to determine the configuration that presents the best thermal efficiency with minimum irreversibility. The evaluation for both configurations is performed using a combined first and second law analysis by varying certain system operating parameters at various reference temperatures and pressures. A unique approach known as topological method is also used to analyze the system from the exergy point of view. Effects of various components are studied using the exergy-wheel diagram.; The results show that ORCs using R113 as working fluid have the best thermal efficiency, while those using Propane demonstrate the worse efficiency. In addition, results from these analyses demonstrate that regenerative ORCs produce higher efficiencies compared to the basic ORC. Furthermore, the regenerative ORC requires less waste heat to produce the same electric power with a lower irreversibility.
机译:许多工业过程具有无法有效回收的低温废热源。低品位废热通常已被工业丢弃,并且由于热污染而成为环境问题。这导致人们对技术的关注,这些技术不仅减轻了不可再生能源的负担,而且还朝着更清洁的环境迈出了一步。被发现对解决上述问题非常有效的一种方法是有机朗肯循环(ORC),其可以利用低温废热来发电。从原理上讲,与常规循环类似,由于循环中使用了有机工作流体,因此ORC在性能上是优越的。这项研究的重点是使用不同类型的有机流体和循环配置检查ORC。选择这些有机工作流体以评估流体沸点温度和流体分类对ORC性能的影响。将结果与相似条件下的水进行比较。为了改善循环性能,还研究了改进的ORC。分析蓄热式ORC并将其与基本ORC进行比较,以确定具有最佳热效率且不可逆性最低的配置。通过在不同的参考温度和压力下改变某些系统运行参数,使用组合的第一定律和第二定律分析来执行两种配置的评估。还从火用角度出发,使用一种称为拓扑方法的独特方法来分析系统。使用火用轮图研究了各种组件的作用。结果表明,使用R113作为工作流体的ORC具有最佳的热效率,而使用丙烷的ORC表现出较差的效率。此外,这些分析的结果表明,与基本ORC相比,再生ORC产生更高的效率。此外,再生ORC需要较少的废热以产生具有较低不可逆性的相同电力。

著录项

  • 作者

    Somayaji, Chandramohan.;

  • 作者单位

    Mississippi State University.$bMechanical Engineering.;

  • 授予单位 Mississippi State University.$bMechanical Engineering.;
  • 学科 Engineering Mechanical.; Engineering Environmental.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 128 p.
  • 总页数 128
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;环境污染及其防治;
  • 关键词

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