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A methodology f or efficiently populating faulted corner point grids withstrain

机译:应变有效地填充故障角点网格的方法

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This article describes an algorithm to compute finite strain in faulted corner point grids using the software Havana. The algorithm is based on a simple fault displacement formula, and a volumetric computation of strain in the grid's deformed configuration. The volumetric computation of strain is tested by comparing the finite strain of a 3D trishear model calculated by this method, with that calculated by the tetrahedrons method. The agreement between both methods confirms the validity of the volumetric strain computation. The algorithm is applied to synthetic models of one and three intersecting normal faults, and to a real model with seven faults, the Emerald Field. In all cases the computed finite strain is consistent with the fault network and with the variation of slip along the faults. There is one parameter that affects the computation significantly: the drag radius (r_d) or extent of folding across a fault. Low r_d models yield high finite strain and strain gradients but limited fault interaction, and vice versa. Using empirical relations between fault throw and damage zone width, r_d can be narrowed down and further constrained by evaluating the quality of the grid's restoration. The strain algorithm can be integrated easily into a reservoir modelling workflow and in stochastic modelling. The algorithm provides criteria for conditioning the distribution of deformational features within the reservoir zones affected by faulting, based on the magnitude of finite strain.
机译:本文介绍了一种使用软件Havana计算故障角点网格中的有限应变的算法。该算法基于简单的故障位移公式,以及网格变形配置中应变的体积计算。通过比较用该方法计算的3D三剪切模型的有限应变与通过四面体方法计算的有限应变,来测试应变的体积计算。两种方法之间的一致性证实了体积应变计算的有效性。该算法适用于一个和三个相交的正常断层的综合模型,以及应用于具有七个断层的真实模型,即翡翠场。在所有情况下,计算出的有限应变均与断层网络以及沿断层的滑动变化一致。有一个参数会显着影响计算:拖曳半径(r_d)或跨断层的折叠程度。低r_d模型会产生较高的有限应变和应变梯度,但有限的断层相互作用,反之亦然。利用断层投掷与损坏区域宽度之间的经验关系,可以通过评估网格的恢复质量来缩小并进一步限制r_d。应变算法可以轻松地集成到储层建模工作流程中和随机建模中。该算法基于有限应变的大小,为调节受断层影响的储层内的变形特征的分布提供了标准。

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