Overpressure Generation Mechanisms and Its Distribution in the Paleocene Shahejie Formation in the Linnan Sag, Huimin Depression, Eastern China

被引:20
作者
Li, Chao [1 ,2 ,3 ]
Luo, Xiaorong [1 ,2 ,3 ]
Zhang, Likuan [1 ,2 ]
Wang, Bing [4 ]
Guan, Xiaoyan [5 ]
Luo, Hongmei [5 ]
Lei, Yuhong [1 ,2 ]
机构
[1] Chinese Acad Sci, Inst Geol & Geophys, Key Lab Petr Resource Res, Beijing 100029, Peoples R China
[2] Chinese Acad Sci, Inst Earth Sci, Beijing 100029, Peoples R China
[3] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[4] China Univ Geosci, Sch Energy Resources, Beijing 100083, Peoples R China
[5] SINOPEC Shengli Oilfield Co, Geol Sci Res Inst, Dongying 257000, Peoples R China
关键词
overpressure mechanism; disequilibrium compaction; fluid expansion; vertical transfer; Shahejie formation; Linnan Sag; PORE-PRESSURE PREDICTION; BOHAI BAY BASIN; ORGANIC-MATTER; PHYSICAL-PROPERTIES; SEDIMENTARY BASINS; EFFECTIVE STRESS; WELL LOGS; NORTH-SEA; COMPACTION; MUDSTONES;
D O I
10.3390/en12163183
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The Linnan Sag is one of the main oil-producing units in the Huimin Depression, Eastern China, and the pore pressure gradients obtained from drill stem tests (DSTs) range from 9.0 to 16.0 MPa/km. Uncertainty about the origin and distribution of abnormally high pressures in the Linnan Sag has led to different interpretations of hydrocarbon accumulation and resource assessments, and it interferes with safe drilling. In the Linnan Sag, mudstone compaction curves are substantially affected by several non-compaction factors, and the normal trend of the compaction curve is difficult to determine. The determination of the origin and distribution of overpressure in the Linnan Sag is a challenge. In this study, the factors that may affect mudstone compaction-such as the shale volume, higher calcareous, and organic matter content-were carefully examined and processed. The pressures in the mudstones were estimated by the corrected mudstone compaction curves, which were compiled from acoustic, density, and neutron logs, and calibrated using DST and mud weight data. The log response-vertical effective stress and acoustic velocity-density crossplots were used to identify the mechanisms that generate overpressure. The comprehensive compaction curve shows that the mudstones in the overpressured layer exhibit clear disequilibrium compaction characteristics. The logging response crossplots demonstrate that those overpressured points were consistent with the loading curve. The findings suggest that, the fundamental mechanism resulting in overpressures is the disequilibrium compaction of thick Paleocene mudstones. Hydrocarbon generation and vertical transfer of overpressure may be the main unloading mechanisms, which corresponds to the overpressure points that deviate from the loading curves. Since organic matter cracking may occur in formations at depths greater than 4000 m (Ro > 1.0%), the contribution of hydrocarbon generation to overpressuring is expected to be limited. The transfer of overpressure through opening faults is therefore considered to be the main cause of higher overpressure in local sandstones. The overpressures in the mudstones are characterized by a gradual decrease from the center to the margin in the Linnan Sag. The pressure in the isolated sand bodies are generally similar to that in the surrounding mudstones, whereas it can be lower or higher when the overpressure in the sand bodies are vertically transferred by faults to other pressure systems. The results of this analysis provide an indication of the magnitude, mechanism, and distribution of overpressure in the Linnan Sag. This insight can be used to guide further exploration of the Linnan Sag and similar geological basins.
引用
收藏
页数:24
相关论文
共 77 条
[1]  
[Anonymous], BASIN RES
[2]   ASSESSMENT OF BETA, THE COMPRESSION COEFFICIENT OF MUDSTONES AND ITS RELATIONSHIP WITH DETAILED LITHOLOGY [J].
APLIN, AC ;
YANG, YL ;
HANSEN, S .
MARINE AND PETROLEUM GEOLOGY, 1995, 12 (08) :955-963
[3]  
Bowers G., 2002, PRESSURE REGIMES SED, V76, P43, DOI DOI 10.1306/M76870C5
[4]  
Bowers G.L., 2002, The Leading Edge, P174, DOI DOI 10.1190/1.1452608
[5]   PORE PRESSURE ESTIMATION FROM VELOCITY DATA - ACCOUNTING FOR OVERPRESSURE MECHANISMS BESIDES UNDERCOMPACTION [J].
BOWERS, GL .
SPE DRILLING & COMPLETION, 1995, 10 (02) :89-95
[6]  
Bredehoeft J.D., 1965, Ground Water, V3, P31, DOI DOI 10.1111/J.1745-6584.1965.TB01218.X
[7]  
[操应长 Cao Yingchang], 2017, [古地理学报, Journal of Palaeogeography], V19, P419
[8]   Pore pressure estimation in reservoir rocks from seismic reflection data [J].
Carcione, JM ;
Helle, HB ;
Pham, NH ;
Toverud, T .
GEOPHYSICS, 2003, 68 (05) :1569-1579
[9]  
Chang X.C., 2007, TALANTA, P38
[10]  
Chen Heli., 1987, OIL GAS GEOL, V8, P233, DOI [10.11743/ogg19870301, DOI 10.11743/OGG19870301]