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HT-PEM Fuel Cell System with Integrated Thermoelectric Exhaust Heat Recovery

机译:HT-pEm燃料电池系统,集成热电排气热回收

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摘要

This thesis presents two case studies on improving the efficiency and the loadfollowing capability of a high temperature polymer electrolyte membrane (HTPEM) fuel cell system by the application of thermoelectric (TE) devices.TE generators (TEGs) are harnessed to recover the system exhaust gas for electricity. For this aim, a heat exchanger based TEG heat recovery subsystem is designed. Instead of optimizing an ordinary rectangular heat exchanger, high efficient and commercialized compact plate-fin exchangers are applied. A library of types of them is also included to pinpoint the ideal heat exchanger type. Commercially available TEG modules are chosen for the subsystem.To optimize the subsystem design, a numerical model was then built and validated. It is a model of several novel elements from the literature. To suit the desires of the subsystem design and operation studies, model precision, versatility and computational load are emphasized. Sensitivity analysis is introduced to master the characteristics of the subsystem and its major parameters for both design and operating considerations. The effects of a power conditioning method, such as Maximum Power Point Tracking (MPPT), of the subsystem power output on the subsystem design and performance were also systematically analyzed. The TEG subsystem configuration is optimized. The usefulness and convenience of the model are proved.TE coolers (TECs) are integrated into the methanol evaporator of the HT-PEM system for improving the whole system load-following capability. System efficiency can also be increased by reducing heat loss. Working modes of the integrated TEC modules are various and unique. They are redefined as TE heat flux regulators (TERs). The feasibility and merits of the TE-integrated evaporator are also identified by an own developed three-dimensional numerical model in ANSYS Fluent®.This thesis introduces the progress of this project in a cognitive order. The first chapter initially prepares the theory and characteristics of the fuel cell system and TE devices. Project motivations are conceived. Then similar studies existing in literature are reviewed for their experiences. Afterwards, the project road map is identified by a list of project objectives. The detailed considerations and steps during carrying out the project are addressed in the second chapter. Major innovations out of this project are also highlighted. The third chapter presents the main results and discussions. Conclusions and future work are discussed in the last chapter.
机译:本文通过热电装置的应用,对提高高温聚合物电解质膜(HTPEM)燃料电池系统的效率和负荷跟踪能力进行了两个案例研究。利用TE发电机(TEG)回收系统废气电力。为此,设计了基于热交换器的TEG热回收子系统。代替优化普通的矩形热交换器,应用了高效且商业化的紧凑型板翅式热交换器。还包括一个类型库,以查明理想的热交换器类型。子系统选择了商用TEG模块。为优化子系统设计,然后建立并验证了数值模型。它是文献中几种新颖元素的模型。为了满足子系统设计和运行研究的需要,强调了模型的精度,多功能性和计算负荷。引入灵敏度分析来掌握子系统的特性及其主要参数,以进行设计和操作方面的考虑。还系统地分析了诸如最大功率点跟踪(MPPT)之类的功率调节方法对子系统功率输出对子系统设计和性能的影响。 TEG子系统配置已优化。证明了该模型的实用性和便利性。将TE冷却器(TEC)集成到HT-PEM系统的甲醇蒸发器中,以提高整个系统的负荷跟踪能力。也可以通过减少热量损失来提高系统效率。集成的TEC模块的工作模式是多种多样且独特的。它们被重新定义为TE热通量调节器(TER)。 TE集成式蒸发器的可行性和优劣还通过ANSYSFluent®中自己开发的三维数值模型来确定。本文以认知顺序介绍了该项目的进展。第一章首先准备了燃料电池系统和TE装置的理论和特性。设想了项目动机。然后回顾文献中已有的类似研究的经验。之后,通过项目目标列表确定项目路线图。在第二章中介绍了项目执行过程中的详细注意事项和步骤。还强调了该项目的重大创新。第三章介绍了主要结果和讨论。结论和未来的工作在上一章中进行了讨论。

著录项

  • 作者

    Gao Xin;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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