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CO2 injection for geothermal development associated with EGR and geological storage in depleted high-temperature gas reservoirs

机译:耗尽高温气藏中与EGR和地质储藏相关的地热开发二氧化碳注入

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High-temperature gas reservoirs (HTGR) come with significant geothermal potentials. Supercritical CO2 has been considered as one of the best heat transmission fluids for geothermal production. In this study, a novel concept technology of CO2-HTGR system has been proposed to develop the geothermal energy in the depleted high-temperature gas reservoirs through CO2 injection associated with EGR and geological storage. CO2 enhanced gas recovery (EGR) with pressure build-up should be conducted first to establish a CO2 gas reservoir with a low methane content, then the hot CO2 gas in the reservoir is produced for heat utilization and then injected back. Finally, the CO2 gas reservoir is shut down for permanent geological storage. Reservoir numerical simulation has been conducted to study the fundamental processes of this concept technology including the establishment of a CO2 gas reservoir through EGR and pure injection, and the heat mining performance of CO2 gas cycling in the created reservoir. The simulation results indicate that a high injection-production ratio during CO2 EGR can shorten the time of establishing a CO2 gas reservoir. The purity of the established CO2 gas reservoir has a significant influence on the heat mining performance of cyclic CO2 gas. When the CO2 purity in the gas reservoir is higher than 90%, the damage of the remaining methane to the heat mining rate of supercritical CO2 can be controlled within 9.5%. The integrated process of CO2 injection for geothermal development associated with EGR and geological storage is more attractive than the conventional CO2 geothermal system and has a stronger on-site feasibility. (C) 2017 Elsevier Ltd. All rights reserved.
机译:高温气藏(HTGR)具有巨大的地热潜力。超临界CO2被认为是地热生产中最好的传热流体之一。在这项研究中,提出了一种新颖的CO2-HTGR系统概念技术,该技术通过与EGR和地质存储相关的CO2注入来开发贫乏高温气藏中的地热能。首先应建立具有压力的CO2增强型气体回收(EGR),以建立一个甲烷含量低的CO2气藏,然后在该气藏中产生热的CO2气以供热利用,然后注入。最后,关闭CO2气藏以进行永久性地质封存。已经进行了储层数值模拟以研究该概念技术的基本过程,包括通过EGR和纯喷射建立CO2气层,以及在已建立的气层中CO2气体循环的热采性能。仿真结果表明,在CO2 EGR期间高的注入生产比可以缩短建立CO2气藏的时间。已建立的CO2气藏的纯度对循环CO2气的热采性能有重大影响。当储气库中的CO2纯度高于90%时,剩余甲烷对超临界CO2放热率的损害可控制在9.5%以内。与传统的二氧化碳地热系统相比,与地热发电和地质封存相关的地热开发二氧化碳综合注入工艺更具吸引力,并且具有更强的现场可行性。 (C)2017 Elsevier Ltd.保留所有权利。

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