Shale gas in China: Characteristics, challenges and prospects (I)
Сланцевый газ в Китае: характеристики, проблемы и перспективы (I)
2015-12-01
SCID: 54.1/r38mfbpe
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Chinese shale gasDepositional environmentOrganic-rich shaleReservoir characterizationWufeng–Longmaxi formations
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Abstract (AI)
The main factors controlling the enrichment and high yield of shale gas were analyzed based on the recent research progress of depositional model and reservoir characterization of organic-rich shale in China. The study determines the space-time comparison basis of graptolite sequence in the Upper Ordovician Wufeng Formation–Lower Silurian Longmaxi Formation and proposes the important depositional pattern of marine organic-rich shale: stable ocean basin with low subsidence rate, high sea level, semi-enclosed water body, and low sedimentation rate. Deposited in the stage of Late Ordovician-Early Silurian, the superior shale with thickness of 20−80 m and total organic carbon (TOC) content of 2.0%−8.4% was developed in large deep-water shelf environment which is favorable for black shale development. Based on the comparison among the Jiaoshiba, Changning and Weiyuan shale gas fields, it is believed that reservoirs of scale are mainly controlled by shale rich in biogenic silica and calcium, moderate thermal maturity, high matrix porosity, and abundant fracture. The shales in the Wufeng and Longmaxi formations are characterized by porosity of 3.0%−8.4%, permeability of 0.000 2×10−3−0.500 0×10−3 μm2, stable areal distribution of matrix pore volume and their constituents, great variation in fracture and pore characteristics among different tectonic regions as well as different well fields and different intervals in the same tectonic. The Cambrian Qiongzhusi shale features poor physical properties with the porosity of 1.5%−2.9% and the permeability of 0.001×10−3−0.010×10−3 μm2, resulted from the carbonization of organic matter, high crystallinity of clay minerals and later filling in bioclastic intragranular pores. Four factors controlling the accumulation and high production of shale gas were confirmed: depositional environment, thermal evolution, pore and fracture development, and tectonic preservation condition; two special features were found: high thermal maturity (Ro of 2.0%−3.5%) and overpressure of reservoir (pressure coefficient of 1.3−2.1); and two enrichment modes were summarized: “structural sweet spots” and “continuous sweet area”.
Key Findings
1
A marine organic-rich shale depositional model is identified: stable low-subsidence basins, high sea level, semi-enclosed waters, and low sedimentation rates.
2
Cambrian Qiongzhusi shale has poorer properties—1.5%–2.9% porosity and 0.001×10−3–0.010×10−3 μm2 permeability—due to organic-matter carbonization, highly crystalline clay minerals, and pore infilling.
3
Large-scale shale gas reservoirs are mainly controlled by biogenic silica- and calcium-rich shale, moderate thermal maturity, high matrix porosity, and abundant fractures.
4
Late Ordovician–Early Silurian deep-water shelves developed superior shale layers 20–80 m thick with total organic carbon contents of 2.0%–8.4%.
5
Shale-gas accumulation and high production are controlled by depositional environment, thermal evolution, pore-fracture development, and tectonic preservation; the abstract also notes high thermal maturity as a distinctive feature.
6
Wufeng–Longmaxi shales show porosities of 3.0%–8.4% and permeabilities of 0.000 2×10−3–0.500 0×10−3 μm2, with strong regional and interval-scale fracture variability.
Research Object
Organic-rich shale and shale gas reservoirs in the Upper Ordovician Wufeng–Lower Silurian Longmaxi formations and Cambrian Qiongzhusi Formation in China
Research Subject
The depositional, thermal, pore–fracture, and tectonic controls on shale-gas enrichment, accumulation, and high production, including reservoir properties and spatial variability
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2015-12-01
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