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Exergy analysis of water loop heat pump system in an office building.

机译:办公楼水循环热泵系统的火用分析。

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摘要

HVAC systems have a significant contribution to the building energy demand and greenhouse gases emissions. The use of effective evaluation indicators and accurate analysis method are very important for improving the energy performance of HVAC systems. The second law of thermodynamics analysis is an appropriate approach to evaluate HVAC system performance.; This thesis presents the second law of thermodynamics analysis of a Water Loop Heat Pump (WLHP) system, applied to a commercial building located in Montreal. This system allows for the heat recovered in the core zone to be used partially in the winter for heating the perimeter zones. The analysis covers both peak design and annual operating conditions. The following equipment is included in the analysis: the water-to-air heat pumps, the boiler, the water circulating pumps, the fan and the heat ejector (e.g., cooling tower). Primary and secondary energy sources are considered, for instance in the case of the generation of electricity. Mathematical models developed in this study are implemented in the Engineering Equations Solver (EES) environment. The performance of the WLHP system is evaluated using indicators such as: the energy and exergy efficiency, the energy and exergy demand, the exergy lost, and the equivalent CO2 emissions due to the system operation.; The results show that the exergy efficiency of the WLHP system has an annual average value of 2.8%. The annual average value of the Coefficient of Performance (COP) of the WLHP system is evaluated at 1.68. The major exergy destruction components of the WLHP system are the boiler, the heat pumps in core zone and the cooling tower.
机译:暖通空调系统对建筑能源需求和温室气体排放有重要贡献。有效的评估指标和准确的分析方法的使用对于提高HVAC系统的能源性能非常重要。热力学分析的第二定律是评估HVAC系统性能的合适方法。本文提出了水环热泵(WLHP)系统的热力学分析第二定律,该系统应用于蒙特利尔的一幢商业建筑。该系统允许在冬季将部分在核心区域中回收的热量用于加热周边区域。分析包括高峰设计和年度运行状况。分析中包括以下设备:水对空气热泵,锅炉,水循环泵,风扇和排热器(例如冷却塔)。例如在发电的情况下考虑一次和二次能源。在这项研究中开发的数学模型是在工程方程求解器(EES)环境中实现的。 WLHP系统的性能通过以下指标进行评估:能源和火用效率,能源和火用需求,火用损失以及由于系统运行而产生的等效CO2排放。结果表明,WLHP系统的火用效率年平均值为2.8%。 WLHP系统的性能系数(COP)的年平均值为1.68。 WLHP系统的主要火用破坏成分是锅炉,核心区的热泵和冷却塔。

著录项

  • 作者

    Zheng, Xin.;

  • 作者单位

    Concordia University (Canada).;

  • 授予单位 Concordia University (Canada).;
  • 学科 Engineering Civil.; Engineering Mechanical.
  • 学位 M.A.Sc.
  • 年度 2006
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;机械、仪表工业;
  • 关键词

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