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首页> 外文期刊>Journal of Energy Resources Technology >A Novel Streamline-Based Objective Function for Well Placement Optimization in Waterfloods
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A Novel Streamline-Based Objective Function for Well Placement Optimization in Waterfloods

机译:一种新的基于流的基于流的目标函数,用于井下井下优化

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摘要

In reservoir development plans, well placement optimization is usually performed to better sweep oil and reduce the amount of trapped oil inside reservoirs. Long-term optimization of well placement requires multiple times simulation of reservoirs which makes these problems cumbersome, especially when a large number of decision variables exist. Cumulative oil production (COP) or net present value (NPV) functions are commonly used as the objective function of optimal enhance oil recovery projects. Use of these functions requires a full-time reservoir simulation and their convergence could be difficult with the chance to be trapped in local optimum solutions. In this study, the novel proportionally distributed streamlines (PDSLs) target function is proposed that can be minimized to reach the optimal well placement. PDSL can be estimated even without full-time reservoir simulation. PDSL tries to direct the appropriate number of streamlines toward the regions with larger amount of oil in the shortest time and hence can improve oil recovery. Particle swarm optimization (PSO) method linked to an in-house streamline-based reservoir simulator is implemented to optimize well placement of water-flooding problems in a two-dimensional heterogeneous reservoir model.
机译:在水库开发计划中,井放置优化通常是为了更好地扫描油并减少储层内的被困油的量。井放置的长期优化需要多次模拟储层,这使得这些问题麻烦繁琐,特别是当存在大量决策变量时。累积石油生产(COP)或净目的值(NPV)函数通常用作最佳增强石油回收项目的目标函数。使用这些功能需要全职储库仿真,并且在局部最佳解决方案中陷入困境,它们的融合可能很困难。在本研究中,提出了新的分布式流程(PDSLS)目标函数,其可以最小化以达到最佳井放置。即使没有全日制储库模拟,也可以估计PDSL。 PDSL试图将适当数量的流线朝着最短的时间内向具有较大油的区域,因此可以改善溢油。实现了与内部流线的储层模拟器相关的粒子群优化(PSO)方法,以优化在二维异构储层模型中的水洪水问题的良好放置。

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