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A Critical Investigation of Optimization of Steam-Assisted Gravity Drainage (SAGD) in Naturally Fractured Heavy-Oil Carbonate Reservoirs of Uncertainty

机译:天然断裂重油碳酸盐储层蒸汽辅助引力排水(SAGD)优化的危急研究

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Advancing technology in thermal recovery and declining conventional oil resources are leading to the increased application of thermal heavy oil recovery processes. Heavy oil resources in carbonate rock are estimated at 1.6 trillion bbl, one-third of which is in the Middle East, making it a crucial part of the global energy supply. A thorough understanding of reservoir properties (including but not limited to natural fracture systems, fluid saturation, permeability and rock matrix) is fundamental to optimizing successful recoveries with existing uncertainties, where efficient optimization through simulation can lead to the application of optimum operational decision parameters combined with improved understanding of the significance of such uncertainty parameters. Steam-assisted gravity drainage (SAGD) provides many advantages compared to conventional surface mining extraction techniques and alternate thermal recovery methods. These advantages include significantly greater per-well production rates, greater reservoir recoveries, reduced water treating costs, and dramatic reductions in steam-oil ratios (SORs). However, carbonate reservoirs exhibit varying properties in terms of porosity, permeability, and flow mechanisms. Many other engineering considerations exist for SAGD, including recovery rate, thermal efficiency, capability and economics of drilling horizontal well pairs, steam quality, steam injection rate, steam pressure, sand production, reservoir pressure maintenance, and water intrusion. In this study, such parameters are simulated and optimized by coupling a numerical reservoir simulator with commercial optimization software featuring exploratory, gradient, and direct methods. A dual permeability approach to modeling naturally fractured reservoirs is used. The results are discussed and the significance of both uncertainty and decision parameters is outlined in addition to the added benefits of optimized solutions using various optimization techniques. The results and observations show significant improvement using the optimum combination of decision parameters, such as steam injection rate, pressure, and temperature, to improve recoveries with a good understanding of the significance of uncertainty parameters, including rock and formation properties, in addition to overburden conditions that can affect the SAGD process. Reservoir management requires effective risk management where a sound understanding of uncertainties is fundamental to success. This study outlines all of these parameters in a comparative way, which can be useful in future industry applications.
机译:在热回收和常规石油资源下降的推进技术导致热重油回收过程的应用增加。碳酸盐岩中的重油资源估计为1.6万亿BBL,其中三分之一是在中东,使其成为全球能源供应的关键部分。彻底了解储层性质(包括但不限于自然骨折系统,流体饱和,渗透率和岩石基质)是优化具有现有不确定性的成功回收的基础,其中通过模拟有效优化可能导致最佳操作决策参数组合的应用改善了对这种不确定性参数的意义的理解。与传统的表面挖掘技术和交替的热回收方法相比,蒸汽辅助重力排水(SAGD)提供了许多优点。这些优点包括各大井生产率,更高的储层回收,降低水处理成本,以及蒸汽油比(SOR)的显着减少。然而,碳酸盐储存器在孔隙率,渗透率和流动机构方面表现出不同的性能。 SAGD存在许多其他工程考虑因素,包括钻井水平井对,蒸汽质量,蒸汽注入速率,蒸汽压力,砂生产,水库压力维护和水侵入的恢复速率,热效率,能力和经济学。在该研究中,通过耦合具有商业优化软件的商业优化软件具有探索性,梯度和直接方法来模拟和优化这些参数。使用自然裂缝储层的模拟的双渗透性方法。讨论了结果,除了使用各种优化技术的优化解决方案的添加优势之外,还概述了不确定性和决策参数的重要性。结果和观察表现出使用决策参数的最佳组合,例如蒸汽注入速率,压力和温度,以改善回收的良好理解,以了解不确定参数的重要性,包括岩石和形成性质,除了覆盖层之外可能影响SAGD过程的条件。水库管理需要有效的风险管理,对不确定因素的理解是成功的基础。本研究以比较方式概述了所有这些参数,这可能在未来的行业应用中有用。

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