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Rapid Simulation Accounting For Well Interference in Unconventional Reservoirs Using Fast Marching Method

机译:快速仿真核算,用于使用快速行进方法对非传统水库的干扰

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The fast marching method(FMM)based rapid simulation has offered significant speed-up,commonly two to three orders of magnitude,for modeling unconventional reservoirs.The key concept here is a coordinate transformation from 3-D to 1-D using the'Diffusive-Time-of-Flight'(DTOF)as the spatial coordinate.The DTOF represents the travel time for pressure front propagation and generalizes the concept of depth of investigation for heterogeneous reservoirs and hydraulically fractured wells.The DTOF can be efficiently computed by solving the Eikonal equation using the Fast Marching Method(FMM).While the FMM-based simulation has shown great potential for single well problems,application to multi-well problems with well-interference has remained a challenge to date.Previous efforts to extend the FMM-based simulation to multi-well problems partitioned the flow domain based on well drainage boundaries.Within each of the subdomain,1-D flow simulations are carried out using DTOF as the spatial coordinate.This method was shown to be a good approximation as long as the drainage boundaries do not change significantly during the simulation period.However,in actual field operations,the well drainage volumes change dynamically because of differences in pressure depletion among producers caused by variations in well productivity and hydraulic fracture network.We propose a novel extension of the FMM-based multi-well simulation that accounts for dynamic changes in drainage boundaries by allowing communications between the sub-domains using inter-partition transmissibility.The inter-partition transmissibilities are computed using analytic pressure solution and inter-partition fluxes are accounted for during flow simulation using non-neighbor connections.Our implementation is benchmarked with a commercial finite difference simulator using a series of synthetic and field scale numerical examples with multiple wells and fracture interference.The results clearly demonstrate the benefits of the proposed approach both in terms of accuracy and computational efficiency.A unique and novel aspect of this work is generalization of the FMM-based simulation accounting for interferences of multiple wells because of differential depletion.The proposed rapid simulation approach is particularly useful for optimizing well spacing and minimizing frac-hits in unconventional plays.
机译:基于快速的行进方法(FMM)的快速模拟已经提高了显着的加速,通常是2至三个数量级,用于建模非传统的储层。这里的关键概念是从3-D使用'diffive的坐标转换 - 飞行时间'(DTOF)作为空间坐标。DTOF代表了压力前传播的行程时间,并推广了异质储层和液压骨折井的研究深度概念。DTOF可以通过解决来有效地计算使用快速行进方法(FMM)的Eikonal方程。当基于FMM的仿真显示出色的单一井问题的潜力很大,应用于具有良好干扰的多井问题仍然是迄今为止延长FMM的挑战 - 基于基于井排水界限的流动域的基于多孔问题的模拟。在每个子域,使用DTOF作为空间Coordina进行1-D流模拟Te.This方法显示出良好的近似,只要在模拟期间的排水边界不会发生显着变化。然而,在实际的现场操作中,由于由变化引起的生产者之间的压力耗尽差异,井排水量动态地变化在良好的生产力和液压骨折网络中.WE提出了一种基于FMM的多孔模拟的新颖延伸,其通过使用区段间传输域允许子域之间的通信来占据排水边界的动态变化。分区间透射性是使用非邻居连接的流动模拟期间计算使用分析压力解决方案和分区间通量的计算。通过使用具有多个孔和断裂干扰的一系列合成和现场比例的数值例子,实现与商业有限差分模拟器有基准测试。结果清楚地表明了PR的好处在准确性和计算效率方面的授权方法。由于差分耗尽,基于FMM的仿真核算的基于FMM的仿真算法的概括为多个孔的干扰。所提出的快速模拟方法对于优化井间距特别有用并最大限度地减少无传统戏剧中的Frac-pits。

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