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Integrated Reservoir-Network Simulation Improves Modeling and Selection of Subsea Boosting Systems for a Deepwater Development

机译:集成储层网络仿真改进了海底升压系统的建模和选择,用于深水开发

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This manuscript presents the results and analyses from an integrated simulation study focused on evaluating and selecting subsea boosting systems. The integrated model uses field management strategies incorporating flow-line routing, field and gathering network constraints and rate allocation. Novel techniques to model subsea networks enable the selection of the boosting system and provide an improved understanding of dynamic conditions encountered in deep water assets. The selected boosting system ensures safe and reliable operations while improving the project's net present value. Combining responses from reservoir and network systems into an integrated model to evaluate the subsea design requirements is a unique aspect of this study, as this involves novel modeling techniques for boosting systems (pumps). The robust approach ensures consistency of phase behavior across the system components, identification of pump requirements, production optimization and cost reduction. Analysis of these outputs leads to an improved understanding of field operation strategies, equipment selection and sizing, and production forecasts. The integrated model uses Inflow Performance Relationships (IPR) from reservoir simulation and vertical lift tables to generate Performance Curves (PC), representing well deliverability as a function of Tubing Head Pressure. Comprehensive field management logic uses the PCs to determine optimal well operating rates that satisfy all subsurface and surface constraints. This approach reduces a complex set of constraints into a single operating rate. Well operating rate, is also a function of pump power, pump suction pressure and the fluid phase behavior across the pumps. The integrated model delivers pump performance within its operating envelope and ensures equipment integrity. Two components of the subsea boosting system, single- and multi-phase pumps, drove performance optimization and selection of system operating conditions. The study incorporated a comprehensive analysis of system constraints through implementation of complex field management rules that accounted for well integrity (completions), performance of network equipment (valves, boosters, pump power requirements), facility capacities, and reservoir deliverability. The integrated study identified the different limiting system constraints throughout the life of the field and improved the overall efficiency of the gathering system. Use of PCs to reduce the constraints into a single operating rate provides tremendous computational performanceimprovement. Moreover, unlike typical optimization problems, adding more constraints to the system did not affect computational performance significantly.
机译:该稿件介绍了集成仿真研究的结果和分析,其专注于评估和选择海底升压系统。集成模型使用包含流线路路由,字段和收集网络约束和速率分配的现场管理策略。模型海底网络的新技术使得能够选择升压系统,并提供改善的深水资产遇到的动态条件的理解。所选升级系统可确保安全可靠的操作,同时改进项目的净现值。将库和网络系统的响应与综合模型相结合以评估海底设计要求是本研究的独特方面,因为这涉及用于升压系统(泵)的新颖建模技术。稳健的方法确保了系统组件的相位行为的一致性,验证泵要求,生产优化和降低成本。对这些产出的分析导致了对现场操作策略,设备选择和尺寸的了解和生产预测的改进。集成模型采用流入性能关系(IPR)从储库仿真和垂直提升表中产生性能曲线(PC),表示作为管道头压力的瞬间可传递性。综合现场管理逻辑使用PC确定满足所有地下和表面约束的最佳运行速率。该方法将复杂的约束集减少为单个操作率。操作率良好,也是泵电源,泵吸入压力和泵上的流体相行为的函数。集成模型在其运行信封内提供泵性能,并确保设备完整性。海底升压系统的两个组件,单相泵,驱动性能优化和系统操作条件的选择。该研究通过实施了复杂的现场管理规则来综合分析系统限制,该规则占井完整(完成),网络设备(阀门,助推器,泵电源),设施容量和储层可传递性。综合研究确定了该领域的寿命的不同限制系统约束,提高了采集系统的整体效率。使用PC将约束减少为单个操作率提供了巨大的计算性能管理。此外,与典型的优化问题不同,向系统添加更多限制并未显着影响计算性能。

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