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Hybrid systems for distributed power generation based on pressurisation and heat recovering of an existing 100 kW molten carbonate fuel cell

机译:基于现有100 kW熔融碳酸盐燃料电池的增压和热回收的分布式发电混合动力系统

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In this paper, different pressurisation and heat recovering techniques for an existing 100kW molten carbonate fuel cell developed by Ansaldo fuel cells (formerly Ansaldo Ricerche) such as electrically driven compressors for anode (fuel) and cathode side (air), turbocharger, simple cycle gas turbine and regenerated gas turbine are analysed and discussed. The analysis has been carried out using for the FCS-MCFC stack simulation a model developed by the Thermochemical Power Group of the University of Genoa carefully tested with available experimental design point data. The design point hybrid system configurations have been analysed in detail using the code HS―MCFC based on the cited MCFC stack model and developed using Simulink language [Master Thesis, University of Genoa, 2001]. The different hybrid systems design point performance are presented and discussed in great detail, taking into account efficiency, specific power, costs, feasibility, and the need of modification of the existing FC―MCFC systems. Due to the size of the hybrid systems investigated (100―150 kW) they are very interesting for distributed power generation applications.
机译:本文针对由Ansaldo燃料电池(以前称为Ansaldo Ricerche)开发的现有100kW熔融碳酸盐燃料电池,采用不同的增压和热回收技术,例如用于阳极(燃料)和阴极侧(空气)的电动压缩机,涡轮增压器,简单循环气体对汽轮机和再生燃气轮机进行了分析和讨论。对于FCS-MCFC堆栈模拟,已经进行了分析,该模型由热那亚大学热化学动力组开发,并使用可用的实验设计点数据进行了仔细测试。设计点混合系统配置已使用基于引用的MCFC堆栈模型的代码HS-MCFC进行了详细分析,并使用Simulink语言进行了开发[热那亚大学,硕士论文,2001]。考虑到效率,比功率,成本,可行性和对现有FC-MCFC系统进行修改的需要,将详细介绍和讨论不同的混合系统设计点性能。由于所研究的混合动力系统的大小(100-150 kW),它们对于分布式发电应用非常有趣。

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