中东地区生物碎屑灰岩的综合地震资料调理

Tengfei Lin, Xueling Wang, Junchang Dong
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引用次数: 1

摘要

白垩纪生物碎屑灰岩储层在中东地区石油工业中占有重要地位。碳酸盐岩的非均质性对储层预测精度提出了挑战,对地震资料质量提出了更高的要求。此外,一些地震数据处理时间超过10年,由于采集足迹异常等随机噪声和相干噪声的存在,导致其信噪比较低。采集处理过程中产生的采集足迹伪影严重地压制了真实的地层特征,给地震解释、地震属性分析和地震反演带来了隐患。然而,叠前地震数据通常是不可用的,这意味着传统的叠前地震处理工作流程(如静校正、高分辨率速度分析和地滚衰减)很难去除噪声。因此,需要一套全面的叠后地震数据调理工作流程来解决上述问题。为了提高叠后地震数据的质量,采用综合数据调理流程进行噪声抑制。首先,利用面向结构的滤波来衰减随机噪声和部分采集足迹伪影。然后计算x-y域地震振幅二维波形变换和滤波后的地震属性,通过交互分析将采集足迹异常(kx-ky域大波数)与真实结构信号(kx-ky域小波数)分离。拉普拉斯-高斯(LoG)滤波器的应用对采集足迹抑制工作流程有明显的改善。本文提出的综合降噪工作流程可以有效地去除周期性和非周期性噪声,从而获得较高的叠后地震体积信噪比。在地震属性计算、地震反演和储层预测中,可以更清晰地描绘出地层特征(潮道、礁滩复合体),消除一些因噪声引起的伪影。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comprehensive Seismic Data Conditioning of the Bioclastic Limestone in the Middle East
The bioclastic limestone reservoirs of Cretaceous period occupy an important position in the petroleum industry of Middle East. It is the carbonate heterogeneity that is challenging the accuracy of the reservoir prediction, which brings forward higher requirements for the seismic data quality. Besides, some seismic data are processed more than 10 years ago, the signal to noise ratio (SNR) is relative low due to the random noise and coherent noise like acquisition footprint anomalies. The acquisition footprint artifacts caused by acquisition and processing seriously suppress the true stratigraphic features, which can result in pitfalls in seismic interpretation, seismic attribute analysis as well as seismic inversion. While the pre-stack seismic data is usually unavailable, which means that the noise can hardly be subtracted by conventional pre-stack seismic processing workflows, such as statics, high-resolution velocity analysis and ground roll attenuation. Consequently, a comprehensive post-stack seismic data conditioning workflow is necessary to solve the above problems. In order to improve the post-stack seismic data quality, a comprehensive data conditioning workflow are applied for noise suppression. Firstly, structural-oriented filtering is utilized to attenuate random noise and partial acquisition footprint artifacts. Then 2D waveform transform of seismic amplitude and filtered seismic attribute in x-y domain are calculated, to separate acquisition footprint anomalies (large wave number in kx-ky domain) from true structural signal (small wave number in kx-ky domain) by interactive analysis. The application of Laplace-Gaussian (LoG) filter deserves an obvious improvement in acquisition footprint suppression workflow. The comprehensive noise attenuation workflow in this paper can effectively remove both periodic and non-periodic noise to obtain higher signal to noise ratio (SNR) for post-stack seismic volume. In this way, the stratigraphic features (tidal-channel, reef-beach complex) can be more clearly depicted and some artifacts caused by noise will disappear in seismic attribute calculation, seismic inversion and reservoir prediction.
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