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Exergoeconomic analysis of solar organic rankine cycle for geothermal air conditioned net zero energy buildings.

机译:地热空调净零能耗建筑太阳能有机朗肯循环的能效经济分析。

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摘要

This study is an attempt at achieving Net Zero Energy Building (NZEB) using a solar Organic Rankine Cycle (ORC) based on exergetic and economic measures. The working fluid, working conditions of the cycle, cycle configuration, and solar collector type are considered the optimization parameters for the solar ORC system.;In the first section, a procedure is developed to compare ORC working fluids based on their molecular components, temperature-entropy diagram and fluid effects on the thermal efficiency, net power generated, vapor expansion ratio, and exergy efficiency of the Rankine cycle. Fluids with the best cycle performance are recognized in two different temperature levels within two different categories of fluids: refrigerants and non-refrigerants. Important factors that could lead to irreversibility reduction of the solar ORC are also investigated in this study.;In the next section, the system requirements needed to maintain the electricity demand of a geothermal air-conditioned commercial building located in Pensacola of Florida is considered as the criteria to select the optimal components and optimal working condition of the system. The solar collector loop, building, and geothermal air conditioning system are modeled using TRNSYS. Available electricity bills of the building and the 3-week monitoring data on the performance of the geothermal system are employed to calibrate the simulation. The simulation is repeated for Miami and Houston in order to evaluate the effect of the different solar radiations on the system requirements.;The final section discusses the exergoeconomic analysis of the ORC system with the optimum performance. Exergoeconomics rests on the philosophy that exergy is the only rational basis for assigning monetary costs to a system’s interactions with its surroundings and to the sources of thermodynamic inefficiencies within it. Exergoeconomic analysis of the optimal ORC system shows that the ratio Rex of the annual exergy loss to the capital cost can be considered a key parameter in optimizing a solar ORC system from the thermodynamic and economic point of view. It also shows that there is a systematic correlation between the exergy loss and capital cost for the investigated solar ORC system.
机译:这项研究是基于积极和经济措施,利用太阳能有机朗肯循环(ORC)来实现零能耗建筑(NZEB)的尝试。工作流体,循环的工作条件,循环配置和太阳能收集器类型被认为是太阳能ORC系统的优化参数。在第一部分中,开发了一种基于分子组分,温度对ORC工作流体进行比较的程序熵图和流体对朗肯循环的热效率,产生的净功率,蒸汽膨胀率和火用效率的影响。在两种不同类别的流体(制冷剂和非制冷剂)中,在两种不同的温度水平下都可以识别出具有最佳循环性能的流体。在这项研究中,还研究了可能导致太阳能ORC不可逆性降低的重要因素。在下一部分中,维持佛罗里达州Pensacola的地热空调商业建筑的电力需求所需的系统要求被认为是:选择系统最佳组件和最佳工作条件的标准。使用TRNSYS对太阳能集热器回路,建筑物和地热空调系统进行建模。利用建筑物的可用电费单和有关地热系统性能的3周监控数据来校准模拟。为了评估不同太阳辐射对系统需求的影响,对迈阿密和休斯敦进行了重复仿真。最后一部分讨论了具有最佳性能的ORC系统的能效经济分析。能效经济学基于这样一种哲学,即能效是将货币成本分配给系统与其周围环境的相互作用以及系统内热力学效率低下的根源的唯一合理基础。最优ORC系统的能效经济分析表明,从热力学和经济角度来看,年度火用损失与资本成本的比率Rex可以视为优化太阳能ORC系统的关键参数。它还表明,对于被研究的太阳能ORC系统,在(火用)损失和资本成本之间存在系统的相关性。

著录项

  • 作者

    Rayegan, Rambod.;

  • 作者单位

    Florida International University.;

  • 授予单位 Florida International University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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