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Vector Field Based Fault Modelling and Stratigraphic Horizons Deformation

机译:矢量场基故障建模与地层视野变形

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Consequent choices during hydrocarbon exploration and field developement depend on 3D numerical models of the main geological interfaces and the major faults in the area of interest. Such structural models provide decisive informations like reservoir rock volume or compartmentalization, and are unavoidable stages to build the reservoir grids used for resources estimation, flow simulations and well planning. However, these models need to be continually modified, either to integrate new information from well drilling and production history or to consider several hypotheses about the most uncertain features of the fault network. To do so, petroleum engineers involved in reservoir modeling need flexible and efficient tools to easily edit parts of structural models while preserving their general consistency. In a first step to handle structural model edition challenges, we propose a new way to numerically model a fault object and deform previously modelled stratigraphic horizons. This method is inspired by the "Vector Field based Shape Deformations" VFSD techniques used by the Computer Graphics community. Our approach considers a fault as a 3D vector field, interpolated thanks to several scalar fields linked to the fault geometry and few scattered data points if available. This vector field is then integrated into path lines able to drive the deformation of the surrounding objects in a purely geometrical manner. The soLobtained deformation is limited to an influence region neighboring the fault and can affect several horizons simultaneously in a consistent and reversible way. Moreover, selfLintersections can be prevented and both the first order smoothness and the fineLscale features of the deformed horizons are conserved. The vector field interpolation methodology we present is based on a userLdefined conceptual model for deformation attenuation and a direction constraint on the displacement. It was implemented in common geomodelling software. The resulting tool is applicable on a wide range of fault geometries, and can be added as a new exit condition for fault network stochastic simulation algorithms. Last, some derived applications, related to salt diapir modelling or paleotopography restoration, are also conceivable.
机译:随之在于烃勘探和现场发展期间的选择取决于主要地质界面的3D数值模型和感兴趣领域的主要故障。这种结构模型提供了储层岩石体积或舱室化等果断的信息,并且是不可避免的阶段,以构建用于资源估算,流量模拟和规划的储层网格。然而,这些模型需要不断修改,要么将新信息集成到钻井和生产历史中,或考虑关于故障网络最不确定的特征的几个假设。为此,参与水库建模的石油工程师需要灵活和有效的工具,可以轻松地编辑结构模型的一部分,同时保持其一般的一致性。在处理结构模型版本挑战的第一步中,我们提出了一种新的方式来数字地模拟故障对象并更改先前建模的地层视野。该方法的灵感来自计算机图形社区使用的“矢量场的形状变形”VFSD技术。我们的方法认为一个错误作为3D矢量字段,由于若干标量字段链接到故障几何形状,如果可用,则若有散射数据点很少。然后将该矢量字段集成到能够以纯几何方式驱动周围物体的变形的路径线。被溶解的变形仅限于邻近故障的影响区域,并且可以以一致和可逆的方式同时影响若干视野。此外,可以防止自我光学,并且第一阶平滑度和变形视野的芬兰特征都是保守的。我们呈现的矢量场插值方法基于Usldefined概念模型,用于变形衰减和位移对位移的方向约束。它是在共同的地质形式软件中实现的。由此产生的工具适用于各种故障几何形状,可以作为故障网络随机仿真算法的新退出条件添加。最后,还可以想到与盐催化或古学图恢复相关的一些衍生的应用。

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