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Model-Predictive-Control (MPC) of Steam Trap Subcool in Steam-Assisted Gravity Drainage (SAGD)

机译:蒸汽辅助重力排水(SAGD)中蒸汽疏水阀过冷的模型预测控制(MPC)

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For thermal technologies for heavy oil and oil sand reservoir extraction, such as cyclic steam stimulation and steam-assisted gravity drainage (SAGD), suboptimal steam conformance leads to recovery factors between 25-50%. Although preliminary research using Proportional-Integral-Derivative (PID) control in SAGD operations has proved beneficial towards steam conformance, PID control is responsive only to deviation from set-points and lacks constraint-handling capabilities. This results in suboptimal actuation signals that are sometimes unattainable. This paper summarizes research on a Model-Predictive-Controller (MPC) with proactive adjustments of steam injection rate. The steam injection rate was determined based on recursive parameter updates of a suitable time varying dynamic model describing the implicit relationship between the subcool temperature difference and the input heat rate, to achieve optimal steam conformance. Furthermore, the steam injection rate was constrained such that the pressure with which the steam impinged on the formation, called well bottom hole pressure (BHP), was below the formation fracture pressure of 4500 kPa at all times. The real time control study was made possible by establishing a bidirectional communication link between the Computer Modelling Group (CMG) STARS?, and MATLAB/Simulink software. The three-dimensional heterogeneous reservoir model, developed in STARS? acted as a virtual plant and the MPC, developed in MATLAB/Simulink, acted as an onsite controller. Results show 35.7% improvement in oil recovery and a more efficient cumulative steam-to-oil ratio (cSOR) profile in comparison to the base case of steam injection at a constant BHP of 4000 kPa.
机译:对于重油和油砂储层开采的热力技术,例如循环蒸汽刺激和蒸汽辅助重力排水(SAGD),次佳的蒸汽顺应性导致回收率介于25%至50%之间。尽管在SAGD操作中使用比例积分微分(PID)控制进行的初步研究已证明对蒸汽顺从性有益,但PID控制仅对偏离设定点的响应做出响应,并且缺乏约束处理能力。这导致有时无法达到的次佳的致动信号。本文总结了对模型预测控制器(MPC)的研究,该模型具有主动调整蒸汽注入速率的功能。基于合适的时变动态模型的递归参数更新来确定蒸汽注入速率,该动态模型描述了过冷温度差与输入热量之间的隐式关系,以实现最佳蒸汽一致性。此外,蒸汽注入速率受到限制,使得蒸汽撞击地层的压力(称为井底井底压力(BHP))始终低于4500 kPa的地层破裂压力。通过在计算机建模组(CMG)STARS?和MATLAB / Simulink软件之间建立双向通信链接,可以进行实时控制研究。在STARS中开发的三维非均质油藏模型?充当虚拟工厂,在MATLAB / Simulink中开发的MPC充当现场控制器。结果表明,与在4000 kPa的恒定BHP下注汽的基本情况相比,采油量提高了35.7%,并且累积汽油比(cSOR)配置更有效。

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