JIA Runxing, FANG Weixuan, 2022. The genesis and ore-controlling regularity of interbedded orebodies controlled by tectonics and lithofacies in Lutangba, Gejiu, Yunnan Province. Journal of Geomechanics, 28 (1): 67-77. DOI: 10.12090/j.issn.1006-6616.20222804
Citation:
ZHAO Lei,
SHI Liangliang,
KE Ling,
et al.,
2017. STUDY OF ALLUVIAL FAN SEDIMENTARY FACIES BASED ON GEOSTATISTICAL SEISMIC INVERSION-TAKE THE C OILFIELD OF XINJIANG AS AN EXAMPLE. Journal of Geomechanics, 23 (5): 686-694.
JIA Runxing, FANG Weixuan, 2022. The genesis and ore-controlling regularity of interbedded orebodies controlled by tectonics and lithofacies in Lutangba, Gejiu, Yunnan Province. Journal of Geomechanics, 28 (1): 67-77. DOI: 10.12090/j.issn.1006-6616.20222804
Citation:
ZHAO Lei,
SHI Liangliang,
KE Ling,
et al.,
2017. STUDY OF ALLUVIAL FAN SEDIMENTARY FACIES BASED ON GEOSTATISTICAL SEISMIC INVERSION-TAKE THE C OILFIELD OF XINJIANG AS AN EXAMPLE. Journal of Geomechanics, 23 (5): 686-694.
The C oilfield of Xinjiang is in the early development period which has few well data and large well spacing. The study of sedimentary facies using seismic inversion data can improve the research accuracy. The two methods are used for seismic inversion studies, namely constrained sparse pulse inversion and geostatistical inversion. The former is limited by seismic resolution and the vertical resolution can't meet the research demand. The latter can improve the vertical resolution. The sedimentary facies distribution is obtained by the geostatistical inversion of the reservoir thickness distribution map and the sedimentary facies pattern is summarized. This method solves the problem in describing the sedimentary facies in the exploration stage and the better results are obtained.
(a) Distribution map of interbedded orebodies in Lutangba of the Gaosong ore field in Gejiu; (b) Sketch map of regional geology in Gejiu, Yunnan (modified after Zhuang et al., 1996) 1-Middle Triassic Falang Formation (T2f); 2-Middle Triassic Gejiu Formation (T2g); 3-The sixth layer of the Kafang member of the Gejiu Formation in Middle Triassic (T2g16); 4-The fifth layer of the Kafang member of the Gejiu Formation in Middle Triassic (T2g15); 5-Late Yanshanian granitoids; 6-Early Yanshanian gabbro; 7-Early Yanshanian monzonite; 8-Late Yanshanian alkaline rocks; 9-Fault breccia; 10-Fault; 11-Inferred fault; 12-Geological boundary; 13-Gently inclined interbedded ore; 14-Steeply inclined interbedded ore; 15-Ore field; 16-Study area; 17-Location of geological profile in Fig. 2
Figure
2.
Sample location from different interbedded orebodies of No.10 Ore Group in Lutangba, Gejiu (modified after Ma et al., 2004)
1-The sixth layer of the Kafang member of the Gejiu Formation in Middle Triassic (T2g16); 2-The fifth layer of the Kafang member of the Gejiu Formation in Middle Triassic (T2g15); 3-Fault and breccia; 4-Fault name; 5-Geological boundary; 6-Orebody number in No.10 Ore Group; 7-Drilling location in the tunnel; 8-Mining level; 9-Elevation; 10-Sample numbers of primary ore; 11-Sample numbers of oxidized ore; 12-Location of geological profile in Fig. 1
Figure
3.
Fabric characteristics of interbedded ores in Lutangba, Gejiu
(a)Primary ore in No.10-12 orebody at the mining level of 1630 m (sample LT-4); (b)Oxidized ore in No.10-12 orebody at the mining level of 1630 m (sample LT-5); (c)Oxidized ore in No.10-13 orebody at the mining level of 1660 m(sample LT-9); (d)Primary ore in No.10-13 orebody at the mining level of 1660 m (sample LT-10); (e)Cassiterite in oxidized ore; (f)Stomatal colloidal pyrite in the primary ore from No.10-13 orebody at the mining level of 1660 m (sample LT-10); (g)Fluorite and metal sulfide in the primary ore from No.10-5 orebody at the mining level of 1690 m (sample LT-13); (h)Metallic sulfide and tremolite in the primary ore from No.10-12 orebody at the mining level of 1630 m (sample LT-4); (i)Tremolite, idiomorphic pyrite, chalcopyrite and quartz (reflected light) in the primary ore from No.10-12 orebody at the mining level of 1630 m (sample LT-5); (j)Tremolite, idiomorphic pyrite, chalcopyrite and quartz (single-polarized light) in the primary ore from No.10-12 orebody at the mining level of 1630 m (sample LT-5)
Figure
4.
Variation curves of average content (%) of major elements in the oxidized ores and primary ores from interbedded orebodied in Lutangba, Gejiu
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JIA Runxing, FANG Weixuan, 2022. The genesis and ore-controlling regularity of interbedded orebodies controlled by tectonics and lithofacies in Lutangba, Gejiu, Yunnan Province. Journal of Geomechanics, 28 (1): 67-77. DOI: 10.12090/j.issn.1006-6616.20222804
JIA Runxing,
FANG Weixuan,
2022. The genesis and ore-controlling regularity of interbedded orebodies controlled by tectonics and lithofacies in Lutangba, Gejiu, Yunnan Province. Journal of Geomechanics, 28 (1): 67-77. DOI: 10.12090/j.issn.1006-6616.20222804