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Thermodynamic System Studies for a Natural Gas Combined Cycle (NGCC) Plant with CO2 Capture and Hydrogen Storage with Metal Hydrides

机译:具有二氧化碳捕获和金属氢化物储氢技术的天然气联合循环(NGCC)厂的热力学系统研究

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摘要

Flexibility in natural gas combined cycle power plants (NGCC) with pre-combustion CO2 capture could be introduced with co-production of hydrogen and subsequent hydrogen storage with metal hydrides (MH). The current work presents a thermodynamic analysis and comparison between steady state ASPEN Plus models of a reference case NGCC plant with no capture and H2 storage, an NGCC plant with pre-combustion capture using gas heated - auto thermal reformer (GHR-ATR) combined with a sorption enhanced water gas shift (SEWGS) unit and a NGCC model with capture and a metal hydride (MH) based hydrogen storage unit. Results have been presented for a high temperature hydride (MgH2) and a medium temperature hydride (Na3AlH6). A net plant efficiency of about 48% was achieved for the system with only capture. Addition of hydrogen storage in this system shows that such plants can be still operated at comparable time based average efficiency of about 47% with an appropriate heat integration in the system. Operating the metal hydride at different temperatures does not reflect reduction in efficiency but a lower equilibrium temperature seems more beneficial particularly for a practical economizer in the HRSG. It is concluded that MH based hydrogen storage in NGCC plants with pre-combustion CO2 capture is a promising option to manage fluctuations in power demand and further investigations are required particularly on heat integration, effect of H2 purification technologies and economic assessment.
机译:天然气联合循环发电厂(NGCC)具有预燃烧CO2捕集的灵活性可以与氢共同生产并随后与金属氢化物(MH)一起储氢引入。当前的工作是对没有捕获和氢气存储的参考案例NGCC工厂的稳态ASPEN Plus模型进行热力学分析,并进行了比较;使用燃气加热的自动燃烧重整器(GHR-ATR)结合了天然气的预燃烧捕获的NGCC工厂。吸附增强型水煤气变换(SEWGS)单元和带有捕获和基于金属氢化物(MH)的储氢单元的NGCC模型。已经给出了高温氢化物(MgH2)和中温氢化物(Na3AlH6)的结果。仅捕集该系统即可达到约48%的净工厂效率。在该系统中增加氢气存储表明,在该系统中进行适当的热集成后,此类装置仍可在基于可比时间的约47%的平均效率下运行。在不同温度下操作金属氢化物并不能反映出效率的降低,但是较低的平衡温度似乎对HRSG中的实际节能器尤其有利。结论是,在NGCC装置中使用燃烧前CO2捕集的基于MH的氢存储是管理电力需求波动的有前途的选择,并且需要进一步研究,尤其是在热集成,H2净化技术的效果和经济评估方面。

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