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Combined hydrogen, heat and electricity generation via biogas reforming: Energy and economic assessments

机译:通过沼气重整制氢,热电联产:能源和经济评估

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Polygeneration systems, designed for providing multiple energy services like hydrogen, heat and electricity, represent a possible solution for the transition to sustainable low-carbon energy systems, thanks to a substantial increase in the overall efficiency. A further step to reach zero-carbon energy systems can be done by using renewables as primary sources.In this study a biogas-based polygeneration system for the combined hydrogen, heat and electricity production is designed and analyzed from energy and economic points of view.The system consists of four sections: a biogas processing unit consisting in an autothermal reactor and a water gas shift reactor, an SOFC power unit, a hydrogen separation unit and a hydrogen compression/storage unit. The syngas generated in the autothermal reforming reactor is split in two fluxes: the first one is sent to the SOFC power unit for generating electricity and heat, the second one is sent to the water gas shift reactor to increase the hydrogen content. The hydrogen rich gas exiting the shifter, purified in the hydrogen separation unit (hydrogen quality is equal to 99.995%), is then compressed up to 820 bars and stored.The system behavior and the energy performances have been investigated by using the numerical simulation based on thermo-electrochemical models. Four operating conditions, related to different SOFC loads (from 30% to 100%), have been analyzed. The evaluated overall efficiencies range from 68.5% to 72.3% and the energy saving, calculated with respect to the separate production of hydrogen, heat and electricity, ranges from about 8% to 26%.The economic assessment, carried out by estimating the total capital investment and the plant profitability, has been performed by analyzing different management strategies (Base Load, Peaker, Ancillary Service and Mobility) and accounting for different technological development levels and market scenarios. Results show that the hydrogen production is the main contributor to the system economic sustainability thanks to the highest prices of hydrogen with respect to the electricity ones. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:多联产系统旨在提供氢,热和电等多种能源服务,由于整体效率的大幅提高,它是向可持续的低碳能源系统过渡的一种可能的解决方案。进一步实现零碳能源系统的步骤可以通过使用可再生能源作为主要来源。在本研究中,从能源和经济角度设计和分析了基于沼气的多联产系统,用于氢,热和电的联合生产。该系统包括四个部分:由自动热反应器和水煤气变换反应器组成的沼气处理单元,SOFC动力单元,氢气分离单元和氢气压缩/存储单元。在自热重整反应器中生成的合成气分为两股通量:第一股被送至SOFC动力装置以产生电能和热量,第二股被送至水煤气变换反应器以增加氢气含量。离开换档器的富氢气体在氢分离装置中净化(氢质量等于99.995%),然后压缩至820 bar并进行存储。通过基于数值模拟研究了系统行为和能量性能在热电化学模型上。已经分析了与不同SOFC负载(从30%到100%)相关的四个运行条件。评估后的整体效率在68.5%到72.3%之间,而氢,热和电的单独生产所计算出的节能量在8%到26%之间。通过估算总资本进行经济评估。通过分析不同的管理策略(基本负荷,Peaker,辅助服务和移动性)并考虑不同的技术开发水平和市场情况来进行投资和工厂盈利能力。结果表明,由于氢气的价格相对于电力价格最高,制氢是系统经济可持续性的主要贡献者。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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