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Workflow to Automatically Update Geological Models during Well Placement with High Angle and Horizontal Well Log Interpretation Results

机译:工作流程以高角度和水平井对数解释结果自动更新地质模型

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We present a novel methodology for integration of high-angle/horizontal (HA/HZ) well data into 3D geomodels as a natural extension to well placement workflows. Log interpretation, typically done in 2D cross-sections, is based on 1-D automated inversion, yielding near-wellbore reservoir structure and properties. 2D cross-section, updated by inversion and further refined using 2D/3D modeling, is subsequently retrofitted into the geomodel so as to minimally perturb the original topology. Changes in positions/dips/azimuths of boundaries and faults, cell properties, and further local grid refinements are applied automatically. The updated geomodel honors high-resolution logs and low-resolution seismic/nearby wells data. We demonstrate this on a typical real-time well placement scenario. Electromagnetic log interpretation codes are integrated as a high performance computing (HPC) Web service into a geosteering/model update workflow. As the initial model, we use 3D geomodel constructed from seismic/vertical well data. A “curtain” cross-section is extracted, edited based on 1D inversion, and further refined to match HA/HZ logs through 2D and 3D forward modeling, by changing properties/dips/layer thicknesses /fault positions, while preserving the original topology. Then, updated node coordinates and cell properties of the affected pillar grid region are calculated to optimally retrofit the changed 2D cross-section into the grid. These changes are then automatically applied to the 3D model. For quality control, we recompute the 2D cross-section from the refined geomodel. Ultimately, we arrive at the geomodel that honors both seismic and resistivity well-log data. The combination, in a single workflow, of physics-based log modeling codes, Services-Oriented Architecture, HPC framework, and the solver to optimally retrofit 2D cross-sections into 3D models, creates a qualitatively new opportunity for well placement engineers. This integrated workflow (1) maximizes the value of deep directional resistivity well-logs and real-time well placement interpretation by incorporating them into the source of data for building geomodels; (2) radically speeds up the model refinement loop by automatically calculating and applying the modifications to 3D reservoir model; (3) enables geoscientists to directly refine geomodels while geosteering. The latter has not been a standard practice, hindered by challenges of scale difference between geomodels and well-logs and lack of availability of efficient modeling codes.
机译:我们提出了一种用于将高角度/水平(HA / HZ)井数据集成到3D地理典中的新方法作为井放置工作流的自然延伸。日志解释通常在2D横截面中完成,基于1-D自动反转,产生近井眼储层结构和性质。 2D横截面,通过反演更新并使用2D / 3D建模进一步改进,随后改装到Geomodel中,以便最小地扰乱原始拓扑。界限和故障,单元格属性和其他本地网格改进的位置/倾斜/方位角的变化是自动应用的。更新的Geomodel荣誉高分辨率的日志和低分辨率地震/附近的井口数据。我们在典型的实时井放置方案上展示了这一点。电磁日志解释代码作为高性能计算(HPC)Web服务集成到Geoostering / Model更新工作流程中。作为初始模型,我们使用从地震/垂直井数据构成的3D地理典。提取“窗帘”横截面,基于1D反转进行编辑,并进一步通过2D和3D正向建模匹配HA / Hz日志,通过改变属性/垂直/层厚度/故障位置,同时保留原始拓扑。然后,计算受影响的支柱网格区域的更新的节点坐标和单元格属性以使改变的2D横截面最佳地改变为网格。然后,这些更改会自动应用于3D模型。对于质量控制,我们将2D横截面从精致的地理典中重新编译。最终,我们到达了戈麦德的地震和电阻率良好的日志数据。在基于物理的日志建模代码,面向服务的架构,HPC框架和求解器的单个工作流程中的组合,以使2D横截面最佳地改装为3D模型,为井放置工程师创造了一个定性的新机会。这种集成工作流程(1)通过将它们结合到建筑工程序的数据来源来最大化深向电阻率良好的日志和实时井放置解释的值。 (2)通过自动计算和应用于3D储液模型的修改,从彻底加速模型细化环; (3)使地球科学家能够在地统治时直接细化地理典。后者尚未成为标准做法,受到良好的良好差异与良好的日志之间的规模差异以及缺乏有效建模代码的挑战的挑战。

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