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Object-Based modeling of fluvial/deepwater reservoirs with fast data conditioning: methodology and case studies

机译:快速数据调理的河流/深水库基于对象的建模:方法论和案例研究

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This paper presents a new method for fast fluvial and deepwater stochastic simulation. Sinusoidal channels and attached levees and crevasses splays are generated to honor global net-to-gross ratios, vertical and areal proportions and well data. Fast conditioning to well data is achieved without resorting to time-consuming iterative procedures such as simulated annealing. The undulating channel centerline is created by 1-D conditional sequential Gaussian simulation. Direct conditioning is also used for the reproduction of 2-D areal proportions. The method has been applied to a fluvial reservoir in the North Sea with 16 wells and to a braided channel reservoir with 110 wells in Mexico. The dependence of CPU time to a number of different factors was explored. The CPU time for the proposed method and annealing based algorithm are compared. The method with direct well conditioning is an order of magnitude faster than annealing based method.
机译:本文提出了一种新的快速河床和深水随机模拟方法。生成正弦曲线通道,附加的堤坝和裂缝,以纪念全球净毛比,垂直和面积比例以及油井数据。无需诉诸费时的迭代过程(例如模拟退火)即可实现对井眼数据的快速调节。起伏的通道中心线是通过一维条件顺序高斯模拟创建的。直接调节还用于再现二维面积比例。该方法已被应用于北海的一个有16口井的河流储层和墨西哥的110口的辫状河道储层中。探索了CPU时间对许多不同因素的依赖性。比较了所提方法和基于退火算法的CPU时间。具有直接井条件的方法比基于退火的方法快一个数量级。

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