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Design of Warm Solvent Injection Processes for Heterogeneous Heavy Oil Reservoirs: A Hybrid Workflow of Multi-Objective Optimization and Proxy Models

机译:非均质重油储层温热溶剂注入工艺设计:多目标优化和代理模型的混合工作流程

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In comparison to Steam-Assisted Gravity-Drainage (SAGD), the technique of injecting of warm solvent vapor into the formation for heavy oil production offers many advantages, including lower capital and operational costs, reduced water usage, and less greenhouse gas emission. However, to select the optimal operational parameters for this process in heterogeneous reservoirs is non-trivial, as it involves the optimization of multiple distinct objectives including oil production, solvent recovery (efficiency), and solvent-oil ratio. Traditional optimization approaches that aggregate numerous competing objectives into a single weighted objective would often fail to identify the optimal solutions when several objectives are conflicting. This work aims to develop a hybrid optimization framework involving Pareto-based multiple objective optimization (MOO) techniques for the design of warm solvent injection (WSI) operations in heterogeneous reservoirs. First, a set of synthetic WSI models are constructed based on field data gathered from several typical Athabasca oil sands reservoirs. Dynamic gridding technique is employed to balance the modeling accuracy and simulation time. Effects of reservoir heterogeneities introduced by shale barriers on solvent efficiency are systematically investigated. Next, a state-of-the-art MOO technique, non-dominated sorting genetic algorithm II, is employed to optimize several operational parameters, such as bottomhole pressures, based on multiple design objectives. In order to reduce the computational cost associated with a large number of numerical flow simulations and to improve the overall convergence speed, several proxy models (e.g., response surface methodology and artificial neural network) are integrated into the optimization workflow to evaluate the objective functions. The study demonstrates the potential impacts of reservoir heterogeneities on the WSI process. Models with different heterogeneity settings are examined. The results reveal that the impacts of shale barriers may be more/less evident under different circumstances. The proxy models can be successfully constructed using a small number of simulations. The implementation of proxy models significantly reduces the modeling time and storages required during the optimization process. The developed workflow is capable of identifying a set of Pareto-optimal operational parameters over a wide range of reservoir and production conditions.This study offers a computationally-efficient workflow for determining a set of optimum operational parameters relevant to warm solvent injection process. It takes into account the tradeoffs and interactions between multiple competing objectives. Compared with other conventional optimization strategies, the proposed workflow requires fewer costly simulations and facilitates the optimization of multiple objectives simultaneously. The proposed hybrid framework can be extended to optimize operating conditions for other recovery processes.
机译:与蒸汽辅助重力排放(SAGD)相比,将温热溶剂蒸气注入重油生产的形成提供了许多优点,包括较低的资本和运营成本,降低水资料和更少的温室气体排放。然而,为了在异构储存器中选择该过程的最佳操作参数是非微不足道的,因为它涉及多种不同的目标,包括石油生产,溶剂回收(效率)和溶剂 - 油比。将众多竞争目标聚合到单个加权目标的传统优化方法通常会在若干目标冲突时常常无法识别最佳解决方案。这项工作旨在开发涉及基于帕累托的多目标优化(MOO)技术的混合优化框架,用于在异构储层中设计热溶剂注入(WSI)操作。首先,基于从几种典型的Athabasca油砂水库收集的现场数据构建了一组合成WSI模型。采用动态网格技术来平衡建模精度和模拟时间。系统研究了页岩屏障对溶剂效率引入的储层异质性的影响得到了系统地进行了系统地研究。接下来,采用最先进的MOO技术,非主导的分类遗传算法II,用于基于多种设计目标优化若干操作参数,例如底孔压力。为了降低与大量数值模拟相关的计算成本并提高整体会聚速度,几个代理模型(例如,响应面方法和人工神经网络)被集成到优化工作流程中以评估客观功能。该研究表明了储层异质性对WSI过程的潜在影响。检查具有不同异质性设置的模型。结果表明,在不同情况下,页岩屏障的影响可能会更高/不那么明显。可以使用少量模拟成功构建代理模型。代理模型的实现显着降低了优化过程中所需的建模时间和存储。开发的工作流程能够在广泛的储层和生产条件下识别一组帕累托最优操作​​参数。本研究提供了一种用于确定与热溶剂喷射过程相关的一组最佳操作参数的计算上有效的工作流程。它考虑了多个竞争目标之间的权衡和相互作用。与其他传统优化策略相比,所提出的工作流程需要较少的昂贵模拟,并促进同时优化多个目标。可以扩展所提出的混合框架以优化其他恢复过程的操作条件。

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