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Design and simulation of a microturbine trigeneration system incorporating hydraulic storage and an inverse Brayton cycle.

机译:结合了液压存储和逆布雷顿循环的微涡轮三联产系统的设计和仿真。

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摘要

Integrated micro-power systems that can provide electricity, heating and cooling (i.e. trigeneration) have the potential to provide greater overall efficiencies than traditional micro-cogeneration power systems with separate cooling devices. With rising grid power rates, small-scale trigeneration has the potential to be economically attractive. The majority of trigeneration systems under development and in use utilize expensive components such as absorption chillers suitable for medium to large-scale trigeneration, which are not economically suitable for small-scale applications.;A study was conducted to assess the thermodynamic and economic performance of the proposed system compared to systems currently used, such as individual generation provided by an air conditioner, high efficiency natural gas furnace, and grid power. Simulations were run for a full year based on actual external temperature, electrical, and thermal loads for a single family detached dwelling located in Winnipeg, Canada. The output of the microturbine studied is 10 kWe, suitable for a domestic household, however the system is easily scaled for larger commercial applications. The majority of the components in the system studied are off-the-shelf products. Performance data was generated using MATLAB(TM) while economic performance was determined with time-based simulations conducted using SIMULINK(TM). The system allows energy islanding by providing for all household energy needs throughout the year, however integration with a power grid is optional. It was found that the operating costs for the proposed trigeneration system in an energy islanding mode of operation were equivalent to or less than individual generation (air conditioning unit, natural gas furnace, grid power) during heating modes of operation, and more expensive for cooling modes of operation. The yearly energy cost for the trigeneration system exceeded the total cost of running individual systems by 30 to 48 percent, however there remains much room for improvement to the trigeneration concept. All economic data was based upon fair market energy prices found in central Canada.;To bring the economic benefit of trigeneration to small-scale users without incorporating expensive components, an inverted Brayton cycle (IBC) is employed which makes use of the expander section already present in a microturbine. A hydraulic accumulator, indirectly charged by a microturbine, provides pressurized air, which is passed through the expander section of the microturbine and cooled due to expansion; simultaneously providing power and cooling flow. As the microturbine is indirectly fired, the flow passing through the engine or IBC can be directly vented into the household, eliminating the need for additional heat exchangers.
机译:与具有单独冷却装置的传统微型热电联产电力系统相比,可提供电力,供暖和冷却(即三联产)的集成式微型电力系统具有提供更高总体效率的潜力。随着电网电价的提高,小型三联发电在经济上具有吸引力。正在开发和使用中的大多数三联产系统都使用昂贵的组件,例如适用于中型至大型三联产的吸收式制冷机,但在经济上不适合小规模应用。;进行了一项研究,以评估热电联产的热力学和经济性能与当前使用的系统相比,该系统与当前使用的系统相比,例如空调提供的独立发电,高效天然气炉和电网电源。根据加拿大温尼伯的单个家庭独立住宅的实际外部温度,电气和热负荷进行了为期一年的模拟。所研究的微型涡轮机的输出为10 kWe,适用于家庭住户,但是该系统易于扩展规模,可用于较大的商业应用。研究的系统中的大多数组件都是现成的产品。使用MATLAB™生成性能数据,同时使用SIMULINK™进行基于时间的仿真来确定经济性能。该系统可通过全年满足所有家庭能源需求来实现能源孤岛,但是与电网集成是可选的。发现在能量孤岛运行模式下,拟议的三联发电系统的运行成本等于或小于加热运行模式下的单个发电(空调机组,天然气炉,电网发电),而冷却成本更高操作模式。三代发电系统的年度能源成本比运行单个系统的总成本高出30%至48%,但是三代发电概念仍有很大的改进空间。所有经济数据均基于加拿大中部的公平市场能源价格。为了将三代发电的经济利益带给小规模用户而又不包括昂贵的组件,采用了反向布雷顿循环(IBC),该循环已经利用了膨胀机部分存在于微型涡轮机中。由微型涡轮机间接充气的液压蓄能器提供加压空气,该空气经过微型涡轮机的膨胀机部分并由于膨胀而冷却;同时提供功率和冷却​​流。由于微型涡轮机是间接燃烧的,通过发动机或IBC的气流可以直接排入家庭,从而无需额外的热交换器。

著录项

  • 作者

    Blieske, Matthew.;

  • 作者单位

    Carleton University (Canada).;

  • 授予单位 Carleton University (Canada).;
  • 学科 Engineering Mechanical.;Energy.
  • 学位 M.A.Sc.
  • 年度 2008
  • 页码 214 p.
  • 总页数 214
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:39:26

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