Distribution characteristics of delta reservoirs reshaped by bottom currents: A case study from the second member of the Yinggehai Formation in the DF1-1 gas field, Yinggehai Basin, South China Sea

被引:0
作者
Shuo Chen
Renhai Pu
Huiqiong Li
Hongjun Qu
Tianyu Ji
Siyu Su
Yunwen Guan
Hui Zhang
机构
[1] State Key Laboratory of Continental Dynamics (Northwest University),
[2] Research Institute of Yanchang Petroleum Group Co. Ltd.,undefined
[3] Research Institute of Petroleum Exploration and Development,undefined
[4] Research Institute of Zhanjiang Branch of China National Offshore Oil Corporation,undefined
来源
Acta Oceanologica Sinica | 2022年 / 41卷
关键词
South China Sea; Yinggehai Basin; second member of the Yinggehai Formation; bottom current transformation; sedimentary model;
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中图分类号
学科分类号
摘要
The Dongfang1-1 gas field (DF1-1) in the Yinggehai Basin is currently the largest offshore self-developed gas field in China and is rich in oil and gas resources. The second member of the Pliocene Yinggehai Formation (YGHF) is the main gas-producing formation and is composed of various sedimentary types; however, a clear understanding of the sedimentary types and development patterns is lacking. Here, typical lithofacies, logging facies and seismic facies types and characteristics of the YGHF are identified based on high-precision 3D seismic data combined with drilling, logging, analysis and testing data. Based on 3D seismic interpretation and attribute analysis, the origin of high-amplitude reflections is clarified, and the main types and evolution characteristics of sedimentary facies are identified. Taking gas formation upper II (IIU) as an example, the plane distribution of the delta front and bottom current channel is determined; finally, a comprehensive sedimentary model of the YGHF second member is established. This second member is a shallowly buried “bright spot” gas reservoir with weak compaction. The velocity of sandstone is slightly lower than that of mudstone, and the reflection has medium amplitude when there is no gas. The velocity of sandstone decreases considerably after gas accumulation, resulting in an increase in the wave impedance difference and high-amplitude (bright spot) reflection between sandstone and mudstone; the range of high amplitudes is consistent with that of gas-bearing traps. The distribution of gas reservoirs is obviously controlled by dome-shaped diapir structural traps, and diapir faults are channels through which natural gas from underlying Miocene source rocks can enter traps. The study area is a delta front deposit developed on a shallow sea shelf. The lithologies of the reservoir are mainly composed of very fine sand and coarse silt, and a variety of sedimentary structural types reflect a shallow sea delta environment; upward thickening funnel type, strong toothed bell type and toothed funnel type logging facies are developed. In total, 4 stages of delta front sand bodies (corresponding to progradational reflection seismic facies) derived from the Red River and Blue River in Vietnam have developed in the second member of the YGHF; these sand bodies are dated to 1.5 Ma and correspond to four gas formations. During sedimentation, many bottom current channels (corresponding to channel fill seismic facies) formed, which interacted with the superposed progradational reflections. When the provenance supply was strong in the northwest, the area was dominated by a large set of delta front deposits. In the period of relative sea level rise, surface bottom currents parallel to the coastline were dominant, and undercutting erosion was obvious, forming multistage superimposed erosion troughs. Three large bottom current channels that developed in the late sedimentary period of gas formation IIU are the most typical.
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页码:86 / 106
页数:20
相关论文
共 230 条
[1]  
Abreu V(2003)Lateral accretion packages (LAPs): an important reservoir element in deep water sinuous channels Marine and Petroleum Geology 20 631-648
[2]  
Sullivan M(2015)Provenance of Upper Miocene sediments in the Yinggehai and Qiongdongnan basins, northwestern South China Sea: evidence from REE, heavy minerals and zircon U-Pb ages Marine Geology 361 136-146
[3]  
Pirmez C(2018)Seismic attenuation, normal moveout stretch, and low-frequency shadows underlying bottom simulating reflector events Geophysical Prospecting 66 857-871
[4]  
Cao L(2003)Instantaneous spectral analysis: detection of low-frequency shadows associated with hydrocarbons The Lead Edge 22 120-127
[5]  
Jiang T(2011)Nonlinear data processing method for the signal enhancement of GPR data Journal of Applied Geophysics 75 113-123
[6]  
Wang Z(1998)Two petroleum systems charge the YA13—1 gas field in Yinggehai and Qiongdongnan basins, South China Sea AAPG Bulletin 82 757-772
[7]  
Carcione J M(2014)Depositional characteristics and processes of alongslope currents related to a seamount on the northwestern margin of the Northwest Sub-Basin, South China Sea Marine Geology 355 36-53
[8]  
Qadrouh A N(2016)Deep-water sedimentary systems and their relationship with bottom currents at the intersection of Xisha Trough and Northwest Sub-Basin, South China Sea Marine Geology 378 101-113
[9]  
Perroud H(1993)Bottom-current-controlled sedimentation: a synthesis of the contourite problem Sedimentary Geology 82 287-297
[10]  
Castagna J P(1999)Seismic features diagnostic of contourite drifts Marine Geology 162 1-38