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首页> 外文期刊>Journal of Petroleum Science & Engineering >Controlling flood displacement fronts using a parallel analytical streamline simulator
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Controlling flood displacement fronts using a parallel analytical streamline simulator

机译:使用并行分析流线模拟器控制洪水位移前沿

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The Analytical Element Method (AEM), originally developed for mathematical modeling of groundwater flow, is here applied in closed-loop waterflood simulations. The Parallel Analytical Streamline Simulator (PASS), based on AEM, enables fast time-of-flight (TOF) calculations and visualizations of sweep efficiency in homogeneous, heterogeneous and fractured reservoirs. Simulations with PASS can test the sweep efficiency for a wide range of well patterns even before field development. We assume a simple direct-line drive and various initial reservoir attributes: a homogenous base case and further explore the effects on the flood advance of zones with heterogeneous permeability and an impervious fault. For all cases, analytical streamline patterns and time-of-flight contours for the flood front (obtained with PASS) are compared to those generated via an independent method based on numerical discretization by a commercial reservoir simulator. The results are convergent and confirm that PASS can be used to determine in closed-loop simulations the well rates that will avoid the occurrence of premature water breakthrough in the production wells. Early breakthrough in the homogenous reservoir occurs for the central producers and occurs later for the peripheral producers. Real-time adjustments of the water injection rates based on closed-loop surveillance of the pressures in producer wells can redirect and control the reservoir flow such that the floodfront arrives simultaneously at all producers. For the heterogeneous reservoir, smart-field well-control for improved sweep efficiency is also visualized. However, when an impervious fault zone blocks the flow path between injector and producer wells the occurrence of premature arrival of injection water in some producers cannot be avoided. (C) 2015 Elsevier B.V. All rights reserved.
机译:最初为地下水流的数学建模而开发的分析元素方法(AEM)在这里应用于闭环注水模拟中。基于AEM的并行分析流线模拟器(PASS)可实现快速飞行时间(TOF)计算,并可视化均质,非均质和压裂油藏的波及效率。使用PASS进行的仿真甚至可以在开发现场之前就可以测试各种井眼模式的扫描效率。我们假设一个简单的直线驱动和各种初始储层属性:一个均质的基础情况,并进一步探讨了渗透率不同且断层不渗透的区域对洪水提前的影响。对于所有情况,将洪水前缘的分析流线样式和飞行时间等高线(通过PASS获得)与通过基于商业储层模拟器的数值离散化的独立方法生成的那些进行比较。结果是收敛的,证实了PASS可用于闭环模拟中确定井速,从而避免在生产井中发生过早的水突破。均质油藏的早期突破发生在中央生产国,而后期则发生在外围生产国。基于对生产井压力的闭环监控,实时调整注水速率可以重新定向和控制储层流量,从而使洪水前沿同时到达所有生产井。对于非均质油藏,还可以看到智能油田井控技术,以提高扫掠效率。但是,当不可渗透的断层带阻塞了注入井和生产井之间的流动路径时,就无法避免注入水过早到达某些生产井中。 (C)2015 Elsevier B.V.保留所有权利。

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