Improving the Imaging of Pre-Messinian Reservoirs in the East Mediterranean Sea, Offshore Egypt, Using Converted Wave Attenuation, Full-Waveform Inversion and Reflection Tomography
-
Published:2022-02-21
Issue:
Volume:
Page:
-
ISSN:
-
Container-title:Day 3 Wed, February 23, 2022
-
language:
-
Short-container-title:
Author:
Abdelqader Mahmoud1, Hamama Sameh1, Abdelqader Usama1, Kanrar Arindam1, Zaki Refaat2, Eloribi Mahmoud2
Affiliation:
1. Schlumberger Egypt 2. Dana Gas Egypt
Abstract
Abstract
The offshore eastern Mediterranean region has received increased international interest in the last decade for its hydrocarbon potential in the pre-salt traps. The presence of a heterogeneous Messinian-age salt layer and complex pre-Messinian structures pose very difficult challenges in seismic imaging. In this paper, we provide a detailed workflow for seismic data preconditioning and imaging which resolves the subsurface challenges of the Mediterranean.
Broadband acquisition was used to collect seismic data, which combines the responses of dual-sensor receivers to remove the effect of the receiver ghost. Adaptive source de-ghosting was then applied to address the source-side ghost. Data was processed using robust multiple attenuation and converted wave attenuation (CWA).
A high-resolution velocity model building and imaging workflow was designed as follows:
Diving waves full-waveform inversion (FWI) to capture detailed velocity for the complex overburden, followed by post-salt reflection tomography. Born modeling-based reflection FWI to update the velocity heterogeneities inside the salt body followed by reflection tomography for the deep section. Reverse time migration (RTM) to handle the waveform multi-pathing.
De-ghosting corrected the wavelet phase and expanded the usable frequency bandwidth, resulting in a broadband dataset for imaging. Robust multiple attenuation and converted wave attenuation (CWA) techniques aided in revealing the true geological dips beneath the salt and facilitated picking accurate residual move-outs during the velocity model building. RTM in conjunction with the high-resolution velocity model significantly improved imaging of complex salt structures and pre-salt reservoirs. At well locations, our workflow resulted in a very good match between the available well data and surface seismic in terms of markers depths and velocity trends.
This paper presents a novel approach for modelling the velocity heterogeneities inside the complex Messinian-age salt formation using the Born modeling-based reflection FWI. In addition, salt-related strong converted waves were successfully attenuated, whereas previously the presence of this energy misled interpreters and caused anomalous velocity updates in similar geological settings in the Mediterranean.
Reference8 articles.
1. Born modeling based adjustive reflection full waveform inversion;Sun,2017 2. Dragoset, B., Moore, I., Yu, M., and Zhao, W. [2008] 3D general surface multiple prediction: An algorithm for all surveys. 78th Annual International Meeting, SEG, Expanded Abstracts, 2426–2430. 3. Hegazy, M., Stweart, A., HydalS., Malave, K., Zdraveva, O., Mataraciogly, O., 2018, Salt-Related Converted-Wave Attenuation – a Deep-Water Example, 80th Conference and Exhibition, EAGE, Extended Abstracts. 4. Rickett, J., Van ManenD.-J., LoganathanP., and SeymourN., (2014), Slanted-streamer data-adaptive de-ghosting with local plane waves: 76th EAGE Conference and Exhibition, Extended Abstracts DOI: 10.3997/2214-4609.20141453 5. The tectono-stratigraphicevolution of eastern Mediterranean with emphasis on Herodotus Basin prospectivity for thedevelopment of hydrocarbon fields;Elia;Bulletin of the Geological Society of Greece,2013
|
|