洪水快速调度分析与优化——以米德兰盆地为例

Guoxiang Liu, Alex Bruns, Glen Murrell
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引用次数: 0

摘要

二次和三次采油项目的有效性在很大程度上取决于作业者对储层内流体流动特性的理解。三维地元模型和基于有限元/差分的模拟器可用于研究储层动态,但该方法通常需要计算昂贵且耗时的工作流程。本文提出了一种集成了快速分析方法和数据分析技术的工作流程,可以快速分析流体流动和储层特征,从而获得接近“实时”的结果。这种快速的工作流程可以指导油藏作业,包括注入流体分配、井况监测、监视和优化,并通过基于云环境的网站应用程序向作业者提供解决方案。该网络系统采用连续性控制方程(电容电阻建模,CRM),仅使用注入和生产数据来分析井间通信。该分析首先匹配生产历史,以确定注入和生产之间的潜在时间响应,同时计算每对井之间的连通性。基于连通性网络所描述的井间关系,工作流简化了假设场景。该工作流程适用于研究不同注入计划、限制条件和事件对产量估算、性能监测、异常警报、注水突破、注入流体供应和设备限制的影响。该系统还可以根据不同的注水井数量自动重新设计注入,以指导注入分配和排水量管理,从而实现洪水优化解决方案。对位于Midland盆地的油田进行了分析,以优化洪水恢复效率并应用监测辅助。该装置由11个注入器和22个生产器组成。经过优化,得出了一种在18个月的时间内增加30%产油量的解决方案。分析还预测了几个早期见水和高含水的实例,以及随后的缓解方案。该系统将注水分析、客户关系管理和现代数据分析相结合,通过基于网络的交付,为作业者提供近乎“实时”的监控和操作优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rapid Flood Operation Analysis and Optimization: A Case Study from the Midland Basin
The effectiveness of secondary and tertiary recovery projects depends heavily on the operator's understanding of the fluid flow characteristics within the reservoir. 3D geo-cellular models and finite element/difference-based simulators may be used to investigate reservoir dynamics, but the approach generally entails a computationally expensive and time-consuming workflow. This paper presents a workflow that integrates rapid analytical method and data-analytics technique to quickly analyze fluid flow and reservoir characteristics for producing near "real-time" results. This fast-track workflow guides reservoir operations including injection fluid allocation, well performance monitoring, surveillance, and optimization, and delivers solutions to the operator using a website application on a cloud-based environment. This web-based system employs a continuity governing equation (Capacitance Resistance Modelling, CRM) to analyze inter-well communication using only injection and production data. The analytic initially matches production history to determine a potential time response between injectors and producers, and simultaneously calculates the connectivity between each pair of wells. Based on the inter-well relationships described by the connectivity network, the workflow facilitates what-if scenarios. This workflow is suitable to study the impact of different injection plans, constraints, and events on production estimation, performance monitoring, anomaly alerts, flood breakthrough, injection fluid supply, and equipment constraints. The system also allows automatic injection re-design based on different number of injection wells to guide injection allocation and drainage volume management for flood optimization solutions. A field located in the Midland basin was analyzed to optimize flood recovery efficiency and apply surveillance assistance. The unit consists of 11 injectors and 22 producers. After optimization, a solution delivering a 30% incremental oil production over an 18-month period was derived. The analysis also predicted several instances of early water breakthrough and high water cut, and subsequent mitigation options. This system couples established waterflood analytics, CRM and modern data-analytics, with a web-based deliverable to provide operators with near "real-time" surveillance and operational optimizations.
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