Citation: | LIU Bin. Free surface multiple imaging technology of shallow water based on reverse time migration[J]. Marine Geology Frontiers, 2023, 39(5): 83-92. doi: 10.16028/j.1009-2722.2022.304 |
In shallow water environment, multiples are widely developed but difficult to suppress. How to deal with the shallow free surface multiples is an important part of marine seismic data processing. Compared with the primary effective wave, the multiples have advantages of small reflection angle, wide illumination range, long propagation path, and high resolution. We improved the traditional suppression practice in which multiples are treated as noise. First, based on the deterministic water layer multiple suppression (DWD) technology and free surface multiple suppression (SRME) technology, shallow water free surface multiples and effective reflected waves could be well separated. Secondly, multiple waves of different orders could be predicted using separated effective waves in the feedback loop theory. Finally, based on the reverse time migration imaging technology with higher imaging accuracy, the imaging of multiples of different orders could be achieved. Our trial processing results of model data and actual data show that the combined separation method could well separate multiples from reflected waves at shallow water free surface. The fractional imaging not only avoided the influence of crosstalk noise in the imaging process, but also expanded the imaging illumination range and improved the imaging quality of seismic data in shallow water areas. Therefore, the effective use of shallow-water free surface multiples is realized.
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Principle of multiple-wave suppression using the DWD method
Schematic diagram of free surface multiple generation
Horizontal multi-layer velocity mode
Different shot records of the modeling
Multiple suppression result of single SRME method
Comparison of single shot record before and after suppression by DWD method
Comparison of single shot record before and after suppression by SRME method
Comparison of single shot record before and after multiple suppression by single method and combined method
Comparison of predicted first-order multiples before and after the suppression
Comparison between first-order multiple imaging and effective wave imaging
Comparison of results before and after multiple suppression by combination method of actual data
Reflected wave and predicted first-order multiple-wave after multiple suppression with actual data
Comparison of first-order multiple-wave and reflected wave imaging results of actual data
Direct imaging using real data of multiple waves