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Using pressure recovery at a depleted gas field to understand saline aquifer connectivity

机译:在耗尽的气田中使用压力恢复来理解盐水含水层的连通性

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摘要

A key uncertainty facing Carbon dioxide Capture and Storage (CCS) in saline aquifers is long term injectivity, which is primarily a function of the connected aquifer pore-volume within which formation brine can be displaced as the CO2 is injected. Protracted injection testing to interrogate and prove the far-field connected pore-volume would increase the lead-in times for commissioning of storage sites and would significantly increase appraisal costs. Here we use natural gas production and subsequent reservoir recharge legacy data from the Esmond gas field in the UK sector of the southern North Sea to gain an understanding of the dynamic behaviour of the Bunter Sandstone, a major saline aquifer. Results suggest that Esmond has a connected pore volume of 1.83x1010 m3, suitable for injecting CO2 at a rate of up to 2 million tonnes per year for at least 55 years. 3D seismic data suggest that Esmond reservoir properties are likely to be replicated across the wider Bunter Sandstone aquifer, notably around the Endurance structure which was, until recently, proposed for a full-chain CCS project.
机译:盐水含水层中二氧化碳捕集与封存(CCS)面临的主要不确定性是长期注入能力,这主要是所连接含水层孔隙体积的函数,随着注入CO2,地层盐水可在其中置换。进行长时间的注射测试以询问并证明远场连通的孔体积会增加存储地点试运行的准备时间,并会显着增加评估成本。在这里,我们使用天然气生产以及随后的北海南部英国地区Esmond气田的储层补给数据,以了解主要盐层含水层Bunter砂岩的动态行为。结果表明,Esmond的连通孔体积为1.83x1010 m3,适用于至少55年内每年以200万吨的速度注入CO2。 3D地震数据表明,Esmond油藏的性状很可能会在更宽的Bunter砂岩含水层中复制,尤其是在Endurance结构周围,直到最近才提出将其用于全链CCS项目。

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