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Hardware simulation of fuel cell/gas turbine hybrids.

机译:燃料电池/燃气轮机混合动力的硬件仿真。

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摘要

Hybrid solid oxide fuel cell/gas turbine (SOFC/GT) systems offer high efficiency power generation, but face numerous integration and operability challenges. This dissertation addresses the application of hardware-in-the-loop simulation (HILS) to explore the performance of a solid oxide fuel cell stack and gas turbine when combined into a hybrid system. Specifically, this project entailed developing and demonstrating a methodology for coupling a numerical SOFC subsystem model with a gas turbine that has been modified with supplemental process flow and control paths to mimic a hybrid system. This HILS approach was implemented with the U.S. Department of Energy Hybrid Performance Project (HyPer) located at the National Energy Technology Laboratory. By utilizing HILS the facility provides a cost effective and capable platform for characterizing the response of hybrid systems to dynamic variations in operating conditions.; HILS of a hybrid system was accomplished by first interfacing a numerical model with operating gas turbine hardware. The real-time SOFC stack model responds to operating turbine flow conditions in order to predict the level of thermal effluent from the SOFC stack. This simulated level of heating then dynamically sets the turbine's "firing" rate to reflect the stack output heat rate. Second, a high-speed computer system with data acquisition capabilities was integrated with the existing controls and sensors of the turbine facility. In the future, this will allow for the utilization of high-fidelity fuel cell models that infer cell performance parameters while still computing the simulation in real-time. Once the integration of the numeric and the hardware simulation components was completed, HILS experiments were conducted to evaluate hybrid system performance. The testing identified non-intuitive transient responses arising from the large thermal capacitance of the stack that are inherent to hybrid systems. Furthermore, the tests demonstrated the capabilities of HILS as a research tool for investigating the dynamic behavior of SOFC/GT hybrid power generation systems.
机译:混合固体氧化物燃料电池/燃气轮机(SOFC / GT)系统提供高效发电,但面临众多集成和可操作性挑战。本文探讨了硬件在环仿真(HILS)技术在固体氧化物燃料电池组和燃气轮机混合系统中的性能。具体来说,该项目需要开发和演示一种将数值SOFC子系统模型与燃气轮机耦合的方法,该燃气轮机已经过补充工艺流程和控制路径的修改,以模仿混合动力系统。这种HILS方法是由位于美国国家能源技术实验室的美国能源混合性能项目(HyPer)实施的。通过使用HILS,该设施提供了一个经济高效的平台,用于表征混合动力系统对运行条件动态变化的响应。混合系统的HILS通过首先将数值模型与运行中的燃气轮机硬件接口来实现。实时SOFC烟囱模型响应运行中的涡轮机流量条件,以预测SOFC烟囱的热排放水平。然后,该模拟的加热水平会动态设置涡轮机的“燃烧”速率,以反映烟囱的输出热量速率。其次,将具有数据采集功能的高速计算机系统与涡轮机设施的现有控件和传感器集成在一起。将来,这将允许利用高保真燃料电池模型来推断电池性能参数,同时仍可实时计算仿真。一旦数字和硬件仿真组件的集成完成,就可以进行HILS实验以评估混合系统的性能。该测试确定了混合系统固有的由堆栈大的热电容引起的非直观的瞬态响应。此外,测试证明了HILS作为研究SOFC / GT混合发电系统动态行为的研究工具的能力。

著录项

  • 作者

    Smith, Thomas Paul.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Mechanical.; Energy.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 271 p.
  • 总页数 271
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;能源与动力工程;
  • 关键词

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