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Integrated modeling approach for solid oxide fuel cell-based power generating system.

机译:基于固体氧化物燃料电池的发电系统的集成建模方法。

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摘要

Solid oxide fuel cell (SOFC) systems have been recognized as the most advanced power generation system with the highest thermal efficiency with a compatibility with a wide variety of hydrocarbon fuels, synthetic gas from coal, hydrogen, etc. As a result of research focused on numerical studies for a tubular type- or a planar type-SOFC, fuel flexibility, design aspects of SOFC, materials, start-up process, and so on, SOFC technologies are remarkably being developed.;Currently, most research activities are limited to a component level characterization of single fuel cell stack or material research for catalyst, electrolyte, sealing process, etc. In other words, approaches for developing an integrated SOFC system with combined heat and power (CHP)/power generation system for transient analysis have been limited. During normal operating modes of a SOFC system, optimal control of fuel and air supply and anode gas recirculation relies on accurate dynamic analysis of the entire SOFC system. With this research, integrated modeling approaches of SOFC stack with heat exchanger (HEX), compact heat exchange reformer (CHER), steam supply system, compressor or blower, ducts, etc. were introduced and developed for a power generation system. And, simulational results were validated with experimental results.;The specific dynamic design tools for an integrated SOFC-based power generation system are as follows: 1) computational model for thermal dynamics of planar SOFC stack during stack heating process w/o production of electricity, 2) validation of simulational result of transient characteristics of the HEX with experimental result during the initial phase of start-up of small SOFC systems, 3) validation of simulational result of transient characteristics of the CHER with experimental result during the initial phase of start-up of small SOFC systems, and 4) development of model for dynamic communication between the developed stages out of fully integrated micro (~10kW) SOFC-based power generation systems.;As a result of the researches, the computational software was developed to investigate the start-up process of SOFC without producing electricity. And, novel transient codes were developed that explain the dynamics of HEX and CHER. Test rigs for the experiment of HEX and CHER were developed. Performances of the HEX and CHER were well demonstrated experimentally and were validated with simulational results. Each developed sub-module was integrated to build up the integrated SOFC system step by step. In the final session, the integrated module was completed by including an electricity production module. The developed integrated SOFC system module provides guidance for establishing the fundamental design characteristics and a direction for choosing suitable HEX, reformer, compressor, etc.
机译:固体氧化物燃料电池(SOFC)系统已被公认为是最先进的发电系统,具有最高的热效率,并且与多种烃燃料,煤,氢气等合成气兼容。对于管状SOFC或平面SOFC的数值研究,燃料的灵活性,SOFC的设计方面,材料,启动过程等,SOFC技术正在得到显着发展。当前,大多数研究活动仅限于单个燃料电池堆的组件级特性描述或用于催化剂,电解质,密封工艺等的材料研究。换句话说,用于开发具有瞬态分析的热电联产(CHP)/发电系统的集成SOFC系统的方法受到限制。在SOFC系统的正常运行模式下,对燃料和空气供应以及阳极气体再循环的最佳控制取决于整个SOFC系统的准确动态分析。通过这项研究,引入并开发了用于发电系统的带热交换器的SOFC烟囱(HEX),紧凑型热交换重整器(CHER),蒸汽供应系统,压缩机或鼓风机,管道等的集成建模方法。并以实验结果验证了仿真结果。集成式基于SOFC的发电系统的具体动态设计工具如下:1)平面SOFC烟囱无发电过程中平面SOFC烟囱的热力学计算模型,2)在小型SOFC系统启动初期用实验结果验证HEX瞬态特性的仿真结果,3)在启动初期用实验结果验证CHER瞬态特性的仿真结果SOFC小型系统的建立,以及4)基于完全集成的微型(〜10kW)SOFC发电系统的已开发阶段之间动态通信模型的开发。;研究的结果,开发了计算软件来调查不产生电力的SOFC的启动过程。并且,开发了新颖的瞬态代码来解释HEX和CHER的动态。开发了用于十六进制和CHER实验的试验台。 HEX和CHER的性能在实验上得到了很好的证明,并得到了仿真结果的验证。集成了每个开发的子模块,以逐步构建集成的SOFC系统。在最后的会议中,通过包含电力生产模块来完成集成模块。开发的集成式SOFC系统模块为建立基本设计特征提供指导,并为选择合适的HEX,重整器,压缩机等提供指导。

著录项

  • 作者

    Ki, Jeongpill.;

  • 作者单位

    The University of Texas at Arlington.;

  • 授予单位 The University of Texas at Arlington.;
  • 学科 Alternative Energy.;Engineering Mechanical.;Sustainability.
  • 学位 Ph.D.
  • 年度 2013
  • 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

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