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Interpretation Guided Seismic Data Processing of a Large 3D OBC Survey With Simultaneous Shooting: A Case Study from Offshore Abu Dhabi

机译:同时射击的大3D欧博测调查的解释引导地震数据处理 - 以海上阿布扎比为例

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The 3D ocean bottom cable technique allows for acquiring long offset and wide azimuth seismic data. The use of simultaneous sources reduces the acquisition turn-around and HSE exposure. In shallow water environments, simultaneous source data are highly contaminated by surface waves and interference noise. Poor signal to noise ratio (S/N) affects velocity estimation, wavelet stability and overall image quality. This paper demonstrates the successful implementation of different processing and interpretation tools to deal with these challenges. The initial velocity model was built by extrapolating checkshot corrected sonic velocities along the interpreted key horizons and was subsequently updated to achieve final PSTM velocity. Several passes of noise attenuation were applied. Volumetric curvature analysis was used to monitor and protect fault planes from smearing during the denoising process. Seismic to well ties were continuously monitored to quantify the improvement after each key process was applied and to QC the seismic wavelet through different processing steps. A key factor to achieve a stable wavelet, at the end of the processing in the shallow water environment offshore Abu Dhabi, was the well driven horizon consistent velocity modeling. High seismic to well synthetic cross-correlation was observed on the final processed data due to the high S/N achieved by several passes of denoising, plus attenuation of strong multiple energy by velocity discrimination. High S/ N, pickable geological events, and high resolution fault images are some of the key features of the final stacked image. In pre-stack data, long offset information is available to facilitate AVO and AVAz studies. Incorporating geological knowledge in the interpretation of horizons and faults and using well data during the course of seismic processing proved to be effective in obtaining a high quality seismic dataset.
机译:3D海底电缆技术允许获取长偏移和宽方位相色数据。同时源的使用减少了采集转弯和HSE曝光。在浅水环境中,同时源数据受到表面波和干扰噪声的高度污染。信噪比的不良信号(S / N)影响速度估计,小波稳定性和整体图像质量。本文展示了不同加工和解释工具的成功实施,以应对这些挑战。初始速度模型是通过推断沿着解释的关键视野的检查表校正的声速度构建,随后更新以实现最终的PSTM速度。应用了几次噪声衰减。体积曲率分析用于监测和保护在去噪过程中涂抹的故障平面。连续监测地震井的良好关系以通过不同的加工步骤施加每个关键方法并通过不同的加工步骤来量化在应用每个关键过程和QC地震小波后的改进。实现稳定小波的关键因素,在浅水环境近海近岸Abu Dhabi的处理结束时,是良好的驱动的地平线一致的速度建模。由于通过几次去噪而实现的高S / N,在最终处理数据上观察到高地震对良好的合成互相关,并通过速度辨别,加上强度的多能量的衰减。高S / N,可旋结地质事件和高分辨率故障图像是最终堆叠图像的一些关键特征。在堆栈预堆叠数据中,长期偏移信息可用于促进AVO和AVAZ研究。在地面处理过程中纳入地平线和故障的解释和使用井数据的融合,证明了在获得高质量的地震数据集中的解释中。

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