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Optimizing Workover Rig Fleet Sizing and SchedulingUsing Deterministic and Stochastic Programming Models

机译:优化修井机机群的大小和调度使用确定性和随机规划模型

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摘要

We present deterministic and stochastic programming models for the workover rig problem, one of the most challenging problems in the oil industry. In the deterministic approach, an integer linear programming model is used to determine the rig fleet size and schedule needed to service wells while maximizing oil production and minimizing rig usage cost. The stochastic approach is an extension of the deterministic method and relies on a two-stage stochastic programming model to define the optimal rig fleet size considering uncertainty in the intervention time. In this approach, different scenario-generation methods are compared. Several experiments were performed using instances based on real-world problems. The results suggest that the proposed methodology can be used to solve large instances and produces quality solutions in computationally reasonable times.
机译:我们提出了修井机问题的确定性和随机编程模型,修井机问题是石油行业最具挑战性的问题之一。在确定性方法中,使用整数线性规划模型来确定维修井所需的钻机车队规模和时间表,同时使石油产量最大化和使钻机使用成本最小化。随机方法是确定性方法的扩展,并依靠两阶段随机规划模型来考虑干预时间的不确定性来定义最佳钻机车队规模。在这种方法中,比较了不同的方案生成方法。使用基于实际问题的实例进行了几次实验。结果表明,所提出的方法可用于求解大型实例并在计算合理的时间内产生优质的解决方案。

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