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Modeling, simulation and optimization of a solar collector driven water heating and absorption cooling plant

机译:太阳能集热器驱动的水加热和吸收式冷却装置的建模,仿真和优化

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摘要

A cogeneration system consisting of a solar collector, a gas burner, a thermal storage reservoir, a hot water heat exchanger, and an absorption refrigerator is devised to simultaneously produce heating (hot water heat exchanger) and cooling (absorption refrigerator system). A simplified mathematical model, which combines fundamental and empirical correlations, and principles of classical thermodynamics, mass and heat transfer, is developed. The proposed model is then utilized to simulate numerically the system transient and steady state response under different operating and design conditions. A system global optimization for maximum performance (or minimum exergy destruction) in the search for minimum pull-down and pull-up times, and maximum system second law efficiency is performed with low computational time. Appropriate dimensionless groups are identified and the results presented in normalized charts for general application. The numerical results show that the three way maximized system second law efficiency, η_(II、max、max、max), occurs when three system characteristic mass flow rates are optimally selected in general terms as dimensionless heat capacity rates, i.e., (ψ_(sp,s),ψ_(wx,wx),ψ_(H,s))_(opt)≌(1.43,0.23,0.14). The minimum pull-down and pull-up times, and maximum second law efficiencies found with respect to the optimized operating parameters are sharp and, therefore important to be considered in actual design. As a result, the model is expected to be a useful tool for simulation, design, and optimization of solar collector based energy systems.
机译:设计了由太阳能收集器,燃气燃烧器,蓄热器,热水热交换器和吸收式制冷机组成的热电联产系统,以同时产生加热(热水热交换器)和制冷(吸收式制冷机系统)。建立了简化的数学模型,该模型结合了基本的和经验的相关性,以及经典的热力学,传质和传热的原理。然后,利用所提出的模型对不同操作和设计条件下的系统瞬态和稳态响应进行数值模拟。在最小的上拉时间和上拉时间以及最大的系统第二定律效率的搜索中,以最小的计算时间执行了系统全局优化,以实现最佳性能(或最小的火用破坏)。识别适当的无量纲组,并将结果显示在标准化图表中以用于一般应用。数值结果表明,当一般选择无量纲热容率的三个系统特征质量流量最优选择时,会出现三路最大化系统第二定律效率η_(II,max,max,max)。 sp,s),ψ_(wx,wx),ψ_(H,s))_(opt)≌(1.43,0.23,0.14)。相对于优化的工作参数而言,最小的下拉时间和上拉时间以及最大的第二定律效率非常明显,因此在实际设计中必须加以考虑。结果,该模型有望成为用于基于太阳能收集器的能源系统的仿真,设计和优化的有用工具。

著录项

  • 来源
    《Solar Energy》 |2009年第8期|1232-1244|共13页
  • 作者单位

    Programu de Pos-Graduacao em Engenharia, PIPE, Centra Politecnico, Universidade Federal do Parana, Caixa Postal 19011, Curitiba, PR 81531-990, Brazil;

    Department of Mechanical Engineering, Florida State University, Tallahassee, FL 32310-6046, USA;

    Programu de Pos-Graduacao em Engenharia, PIPE, Centra Politecnico, Universidade Federal do Parana, Caixa Postal 19011, Curitiba, PR 81531-990, Brazil;

    Departamento de Engenharia Mecanica, Pontifieia Universidade Catolica, Rio de Janeiro, RJ 22453-900, Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    systems engineering; solar collector; absorption refrigeration;

    机译:系统工程;太阳能集热器吸收式制冷;

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