首页> 外文会议>Geothermal 2011;Geothermal Resources Council annual meeting >Pairing of an Integrated Gasification Combined Cycle Power Plant (IGCC) with CO_2-EGS as a Strategy for Deployment in Arid Regions
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Pairing of an Integrated Gasification Combined Cycle Power Plant (IGCC) with CO_2-EGS as a Strategy for Deployment in Arid Regions

机译:将集成气化联合循环发电厂(IGCC)与CO_2-EGS配对作为在干旱地区的部署策略

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We explore the utility of linking an integrated gasification combined cycle (IGCC) plant with EGS. The principal attributes for this linkage is that the IGCC system generates electricity with most of the waste streams reused in the overall process and that the primary output is a stream of pure CO_2 that may be used directly as a heat transfer fluid. This CO_2 may be used either in EGS or as a sequestration stream into a porous aquifer with additional scavenging of heat. We explore the major components of the IGCC system related to coupling with fluid circulation within a geothermal reservoir. The principal features are that combustion of coal using oxygen (rather than air) produces an output stream of H_20 and CO that may be converted to H_2 and CO_2. The hydrogen is available for combustion or higher-value uses and the pure stream of CO_2 reduces the aquifer storage space for sequestration or may be used, as in this case, as a supply stream for EGS. In this case, thermal energy from the EGS reservoir is converted to electricity, as is the steam from the combustion of hydrogen. The IGCC system integrates the combustion of coal with generation of electricity through a steam turbine and importantly with a concentrated output stream of CO_2 alone. This may be used for direct injection of CO_2 into the subsurface - either for sequestration in a porous aquifer or to develop a low fracture porosity EGS reservoir. In this application we concentrate on the latter, identifying the principal attributes of performance of such a system. We note the favorable to neutral heat transfer and fluid transport characteristics of CO_2 relative to water and how these impact the operational feasibility of such as system. We examine the role of fluid rock interactions as the reservoir is developed and as the CO_2 displaces a water front toward the periphery of the effective reservoir. Similarly, we examine the role of these effects on rates of reservoir development and on permeability evolution and on triggered seismicity.
机译:我们探索了将集成气化联合循环(IGCC)厂与EGS链接的实用程序。这种联系的主要属性是,IGCC系统通过在整个过程中重复使用的大部分废物流来发电,并且主要输出是纯净的CO_2物流,可以直接用作传热流体。该CO_2既可以用于EGS中,也可以作为螯合流进入多孔含水层中,同时需要额外的热量清除。我们探索了与地热储层中的流体循环耦合有关的IGCC系统的主要组成部分。主要特征是使用氧气(而不是空气)燃烧煤炭会产生H_20和CO的输出流,可以将其转换为H_2和CO_2。氢气可用于燃烧或更高价值的用途,而纯净的CO_2物流会减少含水层的储藏空间,或在这种情况下可用作EGS的供应物流。在这种情况下,来自EGS储罐的热能将转化为电能,氢燃烧产生的蒸汽也转化为电能。 IGCC系统将煤的燃烧与通过蒸汽轮机发电的发电结合在一起,重要的是仅与CO_2的集中输出流结合在一起。这可用于将CO_2直接注入地下-用于封存在多孔含水层中或用于开发低裂缝孔隙率EGS储层。在此应用程序中,我们专注于后者,确定此类系统性能的主要属性。我们注意到CO_2相对于水有利于中性传热和流体传输特性,以及这些因素如何影响此类系统的操作可行性。我们研究了随着储集层的开发以及随着CO_2将水锋向有效储集层外围驱替的过程中,流体岩石相互作用的作用。同样,我们研究了这些影响对油藏开发速率,渗透率演化和触发地震活动的作用。

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