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Exergoeconomic analysis of natural gas fired and biomass post-fired combined cycle with hydrogen injection into the combustion chamber

机译:将天然气注入燃烧室的天然气和生物质后燃联合循环的能效经济分析

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A natural gas firing and biomass post-firing combined cycle is proposed and analyzed with thermodynamics and exergoeconomics. To enhance performance, hydrogen is produced in a proton exchange membrane electrolyzer and when there is temporarily no market for hydrogen is injected into the combustion chamber of the natural gas firing and biomass post-firing combined cycle with hydrogen injection. Advantages and disadvantages are reported for the cycle with hydrogen injection (NFBPC-HI) relative to the cycle without hydrogen injection (NFBPC-H) with an equivalent biomass flow rate. In this case, the natural gas flow rate reduces by 46% through hydrogen injection. The plant energy efficiency with hydrogen injection decreases by 36% and the exergy efficiency by 37%. The exergy destruction rate decreases and the exergy loss rate becomes slightly lower with hydrogen injection. Regarding environmental impact, hydrogen injection decreases the plant CO2 emission rate by 27%. Also with hydrogen injection, the exergy destruction cost rate decreases and the exergy loss cost rate declines slightly. The product cost using hydrogen injection decreases by up to 9% point as does the exergoeconomic factor for the biomass integrated post-firing combined cycle with hydrogen injection, especially at higher gas turbine inlet temperatures and lower compressor pressure ratios. Overall, the plant with hydrogen injection exhibits some better facets of thermodynamic and economic performance and cleaner production, e.g. lower exergy destruction and loss rates and CO2 emissions and lower total unit product economic costs, although it has lower energy and exergy efficiencies. Crown Copyright (C) 2018 Published by Elsevier Ltd. All rights reserved.
机译:提出了天然气燃烧和生物质后燃烧联合循环并利用热力学和能效经济学进行了分析。为了提高性能,在质子交换膜电解槽中产生氢气,并且在暂时没有氢气市场的情况下,将氢气注入天然气燃烧和生物质后燃联合循环的燃烧室中。据报道,相对于没有氢气注入的循环(NFBPC-H),在相同的生物质流速下,有氢气注入的循环(NFBPC-HI)有优缺点。在这种情况下,通过氢气注入,天然气流量减少了46%。注入氢气的工厂能源效率降低了36%,火用效率降低了37%。随着氢气的注入,火用破坏率降低,火用损失率变得更低。关于环境影响,注氢使工厂的二氧化碳排放率降低了27%。同样,对于氢注入,本能破坏成本率降低并且本能损失成本率略微下降。使用氢气注入的产品成本降低了多达9%,因为生物质集成后燃烧与氢气注入的联合循环的能效经济因素也降低了,特别是在较高的燃气轮机入口温度和较低的压缩机压力比下。总体而言,注入氢气的工厂在热力学和经济性能以及清洁生产方面表现出更好的方面,例如尽管降低了能源和火用效率,但降低了火用破坏和损失率以及二氧化碳排放量,降低了单位产品总经济成本。 Crown版权所有(C)2018,由Elsevier Ltd.出版。保留所有权利。

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