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Design and Control of Integrated Systems for Hydrogen Production and Power Generation.

机译:制氢和发电一体化系统的设计和控制。

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摘要

Growing concerns on CO2 emissions have led to the development of highly efficient power plants. Options for increased energy efficiencies include alternative energy conversion pathways, energy integration and process intensification. Solid oxide fuel cells (SOFC) constitute a promising alternative for power generation since they convert the chemical energy electrochemically directly to electricity. Their high operating temperature shows potential for energy integration with energy intensive units (e.g. steam reforming reactors). Although energy integration is an essential tool for increased efficiencies, it leads to highly complex process schemes with rich dynamic behavior, which are challenging to control. Furthermore, the use of process intensification for increased energy efficiency imposes an additional control challenge.;This dissertation identifies and proposes solutions on design, operational and control challenges of integrated systems for hydrogen production and power generation. Initially, a study on energy integrated SOFC systems is presented. Design alternatives are identified, control strategies are proposed for each alternative and their validity is evaluated under different operational scenarios. The operational range of the proposed control strategies is also analyzed. Next, thermal management of water gas shift membrane reactors, which are a typical application of process intensification, is considered. Design and operational objectives are identified and a control strategy is proposed employing advanced control algorithms. The performance of the proposed control strategy is evaluated and compared with classical control strategies. Finally SOFC systems for combined heat and power applications are considered. Multiple recycle loops are placed to increase design flexibility. Different operational objectives are identified and a nonlinear optimization problem is formulated. Optimal designs are obtained and their features are discussed and compared.;The results of the dissertation provide a deeper understanding on the design, operational and control challenges of the above systems and can potentially guide further commercialization efforts. In addition to this, the results can be generalized and used for applications from the transportation and residential sector to large--scale power plants.
机译:对二氧化碳排放的日益关注导致了高效发电厂的发展。提高能源效率的选择包括替代能源转换途径,能源整合和过程强化。固体氧化物燃料电池(SOFC)构成了一种有希望的发电方式,因为它们将化学能直接通过电化学方式转化为电能。它们的高工作温度显示出与高耗能设备(例如蒸汽重整反应器)进行能量整合的潜力。尽管能量集成是提高效率的重要工具,但它会导致高度复杂的过程方案具有丰富的动态行为,因此难以控制。此外,利用过程强化来提高能效还带来了额外的控制挑战。本论文确定并提出了针对制氢和发电的集成系统的设计,操作和控制挑战的解决方案。最初,对能源集成的SOFC系统进行了研究。确定设计方案,为每种方案提出控制策略,并在不同的操作场景下评估其有效性。还分析了所提出的控制策略的操作范围。接下来,考虑水煤气变换膜反应器的热管理,这是工艺强化的典型应用。确定设计和操作目标,并提出采用高级控制算法的控制策略。评估了所提出的控制策略的性能,并将其与经典控制策略进行了比较。最后,考虑了用于热电联产的SOFC系统。放置了多个循环循环以提高设计灵活性。确定了不同的操作目标,并提出了非线性优化问题。论文的研究结果对上述系统的设计,操作和控制方面的挑战提供了更深刻的理解,并有可能指导进一步的商业化努力。除此之外,结果可以被推广并用于从运输和住宅领域到大型发电厂的应用。

著录项

  • 作者

    Georgis, Dimitrios.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Engineering Chemical.;Energy.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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