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Maximizing Tight Gas Recovery through a New Hydraulic Fracture Optimization Model

机译:通过新的液压骨折优化模型最大限度地提高储气

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As the demand for gas increases worldwide, tight and deep unconventional gas reservoirs are becoming the target for development. However, for such reservoirs the conventional approach of simply fracturing the formation in such reservoirs to hydraulically stimulate the well is inadequate. This is because most currently available commercial software lack proper optimization tools in them and they do not take into consideration several key parameters and realistic constraints in them. An integrated but constrained model to optimize hydraulic fracture treatment has been developed to maximize gas production and net present value with minimum treatment cost. A dual objective function has been incorporated to satisfy operator’s economic constraints and also to investigate trade-off between two conflicting design objectives. Model couples both the industry experience and design constraints based on hydraulic fracture mechanics. The global optimization scheme in the model is driven by an intelligent moving-object algorithm. Unlike commercial software, important design parameters are included as the free design variables which are randomly varied during optimization. Model has been successfully applied to a hypothetical deeper tight gas formation to demonstrate its merits. The optimum treatment design indicates a significant incremental production (by 300% compared to production from non-fractured tight gas well) at lower cost compared to production from non-fractured tight gas sand. Insightful parametric sensitivity analyses are also presented. This model could also be used to study the potential of the deep UAE gas sands.
机译:随着天然气的需求,全球增加,紧张而深入的非传统气体储层正在​​成为发展的目标。然而,对于这种储存器,简单地破裂这种储存器中的形成以液压刺激井的常规方法是不充分的。这是因为最目前可用的商业软件缺乏适当的优化工具,并且他们不考虑几个关键参数和现实限制。已经开发了一种优化液压断裂处理的集成但受限制的模型,以最大限度地利用最低处理成本来最大限度地提高天然气生产和净现值。一项双目标职能已被纳入满足运营商的经济限制,也可以调查两个相互矛盾的设计目标之间的权衡。模型夫妻基于液压骨折力学的行业经验和设计约束。模型中的全局优化方案由智能移动对象算法驱动。与商业软件不同,重要的设计参数包含作为在优化期间随机变化的自由设计变量。模型已成功应用于假设更深的气体形成以证明其优点。优化的处理设计表明,与非破碎的紧的储气砂的生产相比,较低的成本下降了显着的增量产量(与非骨质紧密气井的生产相比,从非骨折储气井的生产)。还提出了富有洞察力的参数敏感性分析。该模型还可用于研究深海煤气砂的潜力。

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