AUTOMATED HIGH-PRECISION ALIGNMENT OF GEOLOGICAL MAPS WITH WELL ORIENTATION

Yue Ma, Yubing Li, Abdulmohsen M. Ali, Nasher M. AlBinHassan, Yi Luo
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Abstract

The 3D reflection seismic interpretation entails the creation of structure maps of subsurface horizons across extensive areas, often spanning tens of thousands of square kilometers within sedimentary basins. In order to be correlated with well measurements, maps made from 3D reflection seismic are routinely assigned the correct depth at well control points. However, integrating orientation information measured from wells remains a challenge due to the absence of upscaling guidelines. We address the scale-dependent nature of geological structure and well orientation information in subsurface mapping, particularly focusing on integrating kilometer-scale seismic interpretation with centimeter-scale well-measured dip and azimuth data. Our pioneering methodology streamlines this integration process through three essential steps: first, transforming well dip and azimuth into a gradient representation; second, smoothly extending gradient differences between the map and well within a user-defined radius of influence; and third, constructing an updated horizon map by Bicubic spline interpolation to ensure automated and high-precision alignment. Additionally, a structure-oriented interpolation technique is introduced to preserve faults and local structures during orientation correction. Application of the methodology to a 3D reflection seismic horizon demonstrates its effectiveness in automating the complex task of tying subsurface maps to well orientation information. This not only reduces the need for manual interventions but also introduces a new perspective in subsurface mapping. It provides a robust framework that enhances the accuracy and reliability of geological interpretation, offering significant advancements beyond previous efforts in the literature.
自动高精度调整地质图与油井方位
三维反射地震解释需要绘制大面积地下地层的结构图,通常在沉积盆地内跨越数万平方公里。为了与油井测量结果相关联,根据三维反射地震绘制的地图通常会在油井控制点分配正确的深度。然而,由于缺乏放大指南,整合油井测量的方位信息仍是一项挑战。我们解决了地下测绘中地质结构和油井方位信息的尺度依赖性问题,尤其侧重于将千米尺度的地震解释与厘米尺度的油井测量倾角和方位角数据整合在一起。我们开创性的方法通过三个基本步骤简化了这一整合过程:第一,将油井倾角和方位角转换为梯度表示;第二,在用户定义的影响半径内平滑扩展地图和油井之间的梯度差异;第三,通过双三次样条插值构建更新的地平线地图,以确保自动和高精度对齐。此外,还引入了以结构为导向的插值技术,以在方位校正过程中保留断层和局部结构。将该方法应用于三维反射地震层,证明了其在将地下地图与油井方位信息绑定这一复杂任务自动化方面的有效性。这不仅减少了人工干预的需要,还为地下绘图引入了新的视角。它提供了一个强大的框架,提高了地质解释的准确性和可靠性,比以往的文献研究有了显著的进步。
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