Performance Analysis of Autonomous Inflow Control Valve in a SAGD Late Life Process with Non-Condensable Gases

S. Taghavi, H. Aakre, Britt M. E. Moldestad
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引用次数: 4

Abstract

The performance of an autonomous inflow control valve (AICV), used to restrict the inflow of unwanted fluids like gas and/or steam was simulated using an industrial reservoir simulator. The simulation results were used to determine how AICVs can improve the oil recovery in steam assisted gravity drainage (SAGD) operations. Utilizing inflow or flow control devices (ICDs/FCDs) in SAGD wells is a method with promising results. FCDs delay steam breakthrough and increase the oil recovery. The recently developed technology, AICV, further improves the oil recovery from SAGD operations. This paper provides a summary of the test data acquired from the full-scale flow loop testing that replicates the downhole operating conditions. Single and multiphase flow performance of an orifice type ICD and AICV is presented and compared. The results confirm the ability of the AICV to restrict the production of gas and/or steam. A performance analysis based on the results from the experiments and well case simulations is presented. The paper also presents an innovative approach on analyzing the well conditions which brings an insight into SAGD production wells completed with AICVs. Simulations are performed in different scenarios of a SAGD late life process with non-condensable gases (NCGs), and these results confirmed a significant reduction in the gas liquid ratio (GLR), and an increased oil production when using AICV compared to the open hole case. Simulation results demonstrated that utilizing AICV in the SAGD production wells will reduce the gas and steam production by 64%. The reduction of steam production from the breakthrough zones allows a lower bottom hole pressure. This gives a higher sandface drawdown in the zones with less mobile oil, and thus a higher production from these zones. Further, this forces the steam chamber to be more evenly distributed along the different zones, resulting in increased oil recovery. Considering the environmental aspect, AICV can contribute to a considerable reduction in the steam use which will consequently reduce the energy and water usage for steam generation. As a result, utilizing AICV in SAGD operations will improve the economics of SAGD projects.
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不凝性气体SAGD后期工艺自动进流控制阀性能分析
采用工业油藏模拟器模拟了自动流入控制阀(AICV)的性能,该阀用于限制不需要的流体(如气体和/或蒸汽)的流入。模拟结果用于确定aicv如何在蒸汽辅助重力泄油(SAGD)作业中提高采收率。在SAGD井中使用流入或流量控制装置(icd / fcd)是一种很有前景的方法。fcd延缓蒸汽突破,提高原油采收率。最近开发的AICV技术进一步提高了SAGD作业的采收率。本文总结了从模拟井下作业条件的全尺寸流环测试中获得的测试数据。介绍并比较了孔板型ICD和AICV的单相和多相流动性能。结果证实了AICV能够限制气体和/或蒸汽的产生。根据实验结果和井例模拟,给出了性能分析。本文还介绍了一种分析井况的创新方法,该方法可以深入了解使用aicv完井的SAGD生产井。在SAGD后期使用不凝性气体(NCGs)的不同情况下进行了模拟,结果证实,与裸眼情况相比,使用AICV可显著降低气液比(GLR),并提高产油量。模拟结果表明,在SAGD生产井中使用AICV可将气蒸汽产量降低64%。通过降低突破层的产汽量,可以降低井底压力。这使得流动油较少的区域具有更高的地表压降,从而提高了这些区域的产量。此外,这迫使蒸汽室沿着不同的区域更均匀地分布,从而提高了石油采收率。考虑到环境方面,AICV可以大大减少蒸汽的使用,从而减少蒸汽产生的能源和水的使用。因此,在SAGD作业中使用AICV将提高SAGD项目的经济效益。
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