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Integrated optimization design for horizontal well placement and fracturing in tight oil reservoirs

机译:卧式井放置和狭小储油储层压裂的集成优化设计

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摘要

Hydraulically fractured horizontal well technologies, which combine hydraulically fractured technology with horizontal well technology, is widely used to enhance oil recovery in tight reservoir production. Although there are many advantages to this method, it requires more investment in drilling and completion. Most academic literature to date has treated the optimization of well placement and fracturing as two separate problems. Computationally expensive numerical simulation techniques are often involved both in well placement and fracturing design optimization processes, but only suboptimal solutions are achievable. In order to achieve co-optimization for horizontal well placement and fracturing, an optimal model has been constructed, with an objective function targeted at maximizing the net present value (NPV), which is a function of location, direction and length of a new horizontal well, the number of fractures, half-length of the fracture etc. Due to the large number of optimization variables, investigating the impacts of horizontal well parameters on the objective function must utilize repetitive runs of numerical simulations involving large computation times for evaluating possible well placement and fracturing scenarios. Aiming to address this challenge, a new method, called the Multipoint Adaptive Gaussian Process Surrogate Model with Important Design Domain (MAGPSM-IDD), is proposed. Then MAGPSM-IDD were applied to a synthetic field and a real reservoir, and our results showed that MAGPSM-IDD could obtain better results with higher efficiency than the popular optimization method, Hybrid Genetic Algorithm (HGA).
机译:用水平井技术结合液压破碎技术的液压破碎的水平井技术被广泛用于提高紧密水库生产中的采油。虽然这种方法存在许多优点,但它需要更多的钻井和完成投资。大多数学术文献迄今为止对井放置和压裂的优化进行了处理,作为两个单独的问题。计算上昂贵的数值模拟技术通常涉及井放置和压裂设计优化过程,但只能实现次优溶液。为了实现水平井放置和压裂的共同优化,已经构建了最佳模型,具有目标函数,以最大化净现值(NPV),这是新水平的位置,方向和长度的函数嗯,骨折的数量,裂缝的半长度等由于大量优化变量,研究了水平井参数对目标函数的影响必须利用涉及大量计算时间来评估可能的数值模拟的重复运行放置和压裂情景。旨在解决这一挑战,提出了一种称为具有重要设计领域(Magpsm-IDD)的多点自适应高斯过程代理模型的新方法。然后,MAGPSM-IDD被应用于合成领域和真正的水库,我们的结果表明,Magpsm-IDD可以比流行的优化方法,混合遗传算法(HGA)更高的效率获得更好的结果。

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