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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Highly Efficient IGFC Hybrid Power Systems Employing Bottoming Organic Rankine Cycles With Optional Carbon Capture
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Highly Efficient IGFC Hybrid Power Systems Employing Bottoming Organic Rankine Cycles With Optional Carbon Capture

机译:高效的IGFC混合动力系统,采用底部有机朗肯循环和可选的碳捕集技术

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摘要

This study examines the performance of a sol id oxide fuel cell- (SOFC-) based integrated gasification power plant concept at the utility scale (>100 MW). The primary system concept evaluated was a pressurized ~150 MW SOFC hybrid power system integrated with an entrained-flow, dry-fed, oxygen-blown, slagging coal gasifier and a combined cycle in the form of a gas turbine and an organic Rankine cycle (ORC) power generator. The analyzed concepts include carbon capture via oxy-combustion followed by water knockout and gas compression to pipeline-ready CO_2 sequestration conditions. The results of the study indicate that hybrid SOFC systems could achieve electric efficiencies approaching 66% [lower heating value (LHV)] when operating fueled by coal-derived clean syngas and without carbon dioxide capture. The system concept integrates SOFCs with the low-pressure turbine spool of a 50 MW Pratt & Whitney FT8-3 TwinPak gas turbine set and a scaled-up, water-cooled 20 MW version of the Pratt & Whitney (P&W) PureCycle ORC product line (approximately 260 kW). It was also found that a system efficiency performance of about 48% (LHV) is obtained when the system includes entrained-flow gasifier and carbon capture using oxygen combustion. In order to integrate the P&W FT8 into the SOFC system, the high-pressure turbine spool is removed which substantially lowers the FT8 capital cost and increases the expected life of the gas turbine engine. The impact of integrating an ORC bottoming cycle was found to be significant and can add as much as 8 percentage points of efficiency to the system. For sake of comparison, the performance of a higher temperature P&W ORC power system was also investigated. Use of a steam power cycle, in lieu of an ORC, could increase net plant efficiency by another 4%, however, operating costs are potentially much lower with ORCs than steam power cycles. Additionally, the use of cathode gas recycle is strongly relevant to efficiency performance when integrating with bottoming cycles. A parameter sensitivity analysis of the system revealed that SOFC power density is strongly influenced by design cell voltage, fuel utilization, and amount of anode recycle. To maximize the power output of the modified FT8, SOFC fuel utilization should he lower than 70%. Cathode side design parameters, such as pressure drop and temperature rise were observed to only mildly affect efficiency and power density.
机译:这项研究在公用事业规模(> 100 MW)下研究了基于固体氧化物燃料电池(SOFC)的综合气化发电厂的性能。评估的主要系统概念是加压的〜150 MW SOFC混合动力系统,该系统集成了气流,干式,吹氧,排渣煤气化炉以及燃气轮机和有机朗肯循环形式的联合循环( ORC)发电机。分析的概念包括通过氧燃烧捕获碳,然后进行水敲除和将气体压缩到准备好管道的CO_2隔离条件。研究结果表明,混合SOFC系统在以煤为原料的清洁合成气为燃料且无二氧化碳捕集的情况下,可实现接近66%[低热值(LHV)]的电效率。该系统概念将SOFC与50 MW普惠FT8-3 TwinPak燃气轮机组的低压涡轮线轴和普惠(P&W)PureCycle ORC产品线的放大,水冷20 MW版本集成在一起(约260千瓦)。还发现,当系统包括气流床气化炉和使用氧气燃烧进行碳捕集时,可获得约48%(LHV)的系统效率。为了将P&W FT8集成到SOFC系统中,去除了高压涡轮阀芯,这大大降低了FT8的资本成本并增加了燃气涡轮发动机的预期寿命。发现集成ORC触底循环的影响非常显着,可以为系统增加多达8个百分点的效率。为了进行比较,还研究了高温P&W ORC电源系统的性能。使用蒸汽动力循环代替ORC可以使工厂的净效率再提高4%,但是,ORC的运行成本可能比蒸汽动力循环低得多。另外,在与底部循环集成时,阴极气体循环的使用与效率性能密切相关。系统的参数敏感性分析表明,SOFC功率密度受设计电池电压,燃料利用率和阳极循环量的强烈影响。为了使改进型FT8的功率输出最大化,SOFC燃料利用率应低于70%。观察到阴极侧的设计参数(例如压降和温度升高)仅会轻微影响效率和功率密度。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2012年第2期|p.021801.1-021801.15|共15页
  • 作者单位

    Engineering Division,Colorado School of Mines,Golden, CO 80401;

    United Technologies Research Center,East Hartford, CT 06108;

    United Technologies Research Center,East Hartford, CT 06108;

    United Technologies Research Center,East Hartford, CT 06108;

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