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首页> 外文期刊>The Journal of Canadian Petroleum Technology >Numerical Investigation of Potential Injection Strategies To Reduce Shale Barrier Impacts on SAGO Process
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Numerical Investigation of Potential Injection Strategies To Reduce Shale Barrier Impacts on SAGO Process

机译:减少页岩壁垒对SAGO工艺影响的潜在注入策略的数值研究

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It is well known that shale barriers significantly reduce steam-assisted gravity drainage (SAGD) performance in Athabasca fields. An extensive 2D simulation study shows that the flow resistance at the end of shale barriers and the extra heat absorbed by the residual water inside the unproductive shale barrier are the main reasons for the shale barrier effects. Long continuous shale barriers located vertically above or near the wellbore delay production performance significantly. We investigated potential strategies, including solvent coinjec-tion, top injector application, or a combination of both, to reduce the shale barrier impacts. Solvent in the vapour phase can pass through the narrow flow path at the end of a shale barrier. Meanwhile, because the phase condenses from vapour to liquid, solvent efficiently reduces the flow resistance of the shale barrier. Liquid solvent coinjection can accelerate the near-wellbore flow and reduce the residual oil saturation at the wellbore vicinity. Coinjecting a multicomponent solvent can flush out the oil at different areas with different drainage mechanisms from vaporized and liquid components. Additional injector application at the top of the reservoir results in only marginal improvement.
机译:众所周知,页岩屏障大大降低了阿萨巴斯卡油田的蒸汽辅助重力排水(SAGD)性能。广泛的二维模拟研究表明,页岩屏障末端的流动阻力以及非生产性页岩屏障内部残留水吸收的多余热量是造成页岩屏障作用的主要原因。垂直位于井眼上方或附近的长条形连续页岩屏障严重延迟了生产性能。我们研究了可能的策略,包括溶剂共注入,顶部进样器应用或两者的组合,以减少页岩屏障的影响。气相中的溶剂可以通过页岩屏障末端的狭窄流动路径。同时,由于相从蒸气冷凝为液体,因此溶剂有效地降低了页岩屏障的流动阻力。液体溶剂共注入可以加速近井眼流动并减少井眼附近的残余油饱和度。共注入多组分溶剂可以用不同的排水机理从汽化和液态组分中冲洗掉不同区域的油。在油箱顶部额外应用喷油器只会带来轻微的改善。

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