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Large-scale complex physical modeling and precision analysis

机译:大规模复杂物理建模和精密分析

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摘要

Large-scale 3D physical models of complex structures can be used to simulate hydrocarbon exploration areas. The high-fidelity simulation of actual structures poses challenges to model building and quality control. Such models can be used to collect wide-azimuth, multi-azimuth, and full-azimuth seismic data that can be used to verify various 3D processing and interpretation methods. Faced with nonideal imaging problems owing to the extensive complex surface conditions and subsurface structures in the oil-rich foreland basins of western China, we designed and built the KS physical model based on the complex subsurface structure. This is the largest and most complex 3D physical model built to date. The physical modeling technology advancements mainly involve 1) the model design method, 2) the model casting flow, and 3) data acquisition. A 3D velocity model of the physical model was obtained for the first time, and the model building precision was quantitatively analyzed. The absolute error was less than 3 mm, which satisfies the experimental requirements. The 3D velocity model obtained from 3D measurements of the model layers is the basis for testing various imaging methods. Furthermore, the model is considered a standard in seismic physical modeling technology.
机译:复杂结构的大规模三维物理模型可用于模拟油气勘探区域。对实际结构的高保真仿真对模型构建和质量控制提出了挑战。此类模型可用于收集宽方位角、多方位角和全方位角地震数据,这些数据可用于验证各种 3D 处理和解释方法。针对西部富油前陆盆地广泛复杂的地表条件和地下构造导致的不理想成像问题,我们设计并构建了基于复杂地下结构的KS物理模型。这是迄今为止构建的最大、最复杂的 3D 物理模型。物理建模技术的进步主要涉及1)模型设计方法,2)模型铸造流程,3)数据采集。首次获得物理模型的三维速度模型,并对模型构建精度进行定量分析。绝对误差小于3 mm,满足实验要求。从模型层的 3D 测量中获得的 3D 速度模型是测试各种成像方法的基础。此外,该模型被认为是地震物理建模技术的标准。

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