首页> 外文会议>ASME international mechanical engineering congress and exposition >USE OF SUPERCRITICAL C02 HEATED WITH GEOTHERMAL ENERGY FOR POWER PRODUCTION THROUGH DIRECT EXPANSION AND HEAT SUPPLY TO AN ORC CYCLE
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USE OF SUPERCRITICAL C02 HEATED WITH GEOTHERMAL ENERGY FOR POWER PRODUCTION THROUGH DIRECT EXPANSION AND HEAT SUPPLY TO AN ORC CYCLE

机译:利用地热能加热的超临界CO2通过直接膨胀和向兽族循环供热来发电

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Sustainable energy supply and environmental impact caused by burning of fossil fuels are two of the major worldwide concerns. Regarding sustainable energy supply, several non-conventional alternatives and technologies are currently under study to be implemented from short- to mid-term. On the other hand, CO_2 capture and sequestration (CCS) has been considered as a means for controlling anthropogenic greenhouse gas. Based on these considerations, CCS along with non-conventional heat mining and use of geothermal energy is one of the mid-term concepts that is subject to an in-depth research. One of those research lines involves injection of supercritical carbon dioxide (SCO_2) in a naturally high-permeability hydrothermal reservoir in order to mine geothermal energy for subsequent power production. This requires to understand widely the behavior of SCO_2 inside the geothermal reservoir, as well as to study feasible options for sustainable power production using SCO_2 as a working fluid. The present work refers to CO_2 captured from a fossil fuel plant that is compressed and injected into a geothermal reservoir forming a geothermal plume for extracting geothermal energy for power production. Assuming that hot SCO_2 is available for power production, a power system is proposed and analyzed using a process simulation software. The plant configuration allows SCO_2 to circulate through a direct expansion turbine for production of electricity, then SCO_2 at the outlet of the turbine passes through a heat exchanger to provide heat to an organic Rankine cycle for additional power production. Supercritical CO2 leaving the heat exchanger is compressed and reinjected back into the geothermal reservoir for further heat mining. Based on a pre-selection stage, Isobutane, R245fa and C02 were selected as working fluids to analyze the performance of these working fluids on the entire power system. The results show that the combined system makes use of geothermal heat mined by SCO_2 more effectively than a pure ORC, increasing the overall energy efficiency of the system.
机译:由化石燃料燃烧引起的可持续能源供应和环境影响是世界范围内的两个主要问题。关于可持续能源供应,目前正在研究从短期到中期实施的几种非常规替代品和技术。另一方面,CO_2的捕获和封存(CCS)被认为是控制人为温室气体的一种手段。基于这些考虑,CCS以及非常规的热采矿和地热能的使用是中期概念之一,需要进行深入研究。这些研究线之一涉及在自然高渗透性的热液储层中注入超临界二氧化碳(SCO_2),以开采地热能以用于随后的发电。这需要广泛了解地热储层内部SCO_2的行为,并研究使用SCO_2作为工作流体进行可持续发电的可行方案。目前的工作是指从化石燃料工厂捕获的CO_2,其被压缩并注入到地热储层中,形成地热羽流,以提取地热能用于发电。假设热的SCO_2可用于发电,则提出了一个电力系统,并使用过程仿真软件对其进行了分析。工厂配置允许SCO_2循环通过直接膨胀式涡轮机发电,然后在涡轮机出口处的SCO_2穿过热交换器,将热量提供给有机朗肯循环,以产生更多电力。离开换热器的超临界CO2被压缩并重新注入地热储层,以进行进一步的热能开采。在预选阶段的基础上,选择异丁烷,R245fa和CO2作为工作流体,以分析这些工作流体在整个动力系统上的性能。结果表明,该组合系统比单纯的ORC更有效地利用SCO_2开采的地热,从而提高了系统的整体能效。

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