Dajing Sn-Cu-polymetallic deposit, Linxi County, Chifeng City (Ulanhad League; Chifeng Prefecture), Inner Mongolia, Chinai
| Regional Level Types | |
|---|---|
| Dajing Sn-Cu-polymetallic deposit | Mine |
| Linxi County | County |
| Chifeng City (Ulanhad League; Chifeng Prefecture) | Prefecture-level City |
| Inner Mongolia | Autonomous Region |
| China | Country |
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Latitude & Longitude (WGS84):
43° 41' 30'' North , 118° 15' 56'' East
Latitude & Longitude (decimal):
Type:
Köppen climate type:
Other/historical names associated with this locality:
Dajingzi
Name(s) in local language(s):
大井铜錫多金属矿, 林西县, 赤峰市, 内蒙古自治区, 中国
Large-scale copper-tin-polymetallic ore deposit with Sn, Cu, Pb, Zn, Ag and minor elements such as Co and In, hosted by rocks of the Upper Permian Linxi group (terrigenous lacustrine sedimentary rocks, consisting of sandstone, slate, pelitic-silty slate, medium-to fine-grained graywacke, siderite nodule- and P-siderite nodule-bearing siltstone, and marl), in the southwest part of the Huanggang-Wulanhaote metallogenic belt. Orebodies are mainly developed in the upper part of the marl layer and below the P-bearing horizon. Multiperiodic activities of the host structures system led to a multistage mineralization. Four stages are recognized in the main mineralization: 1) cassiterite-arsenopyrite-quartz stage, 2) cassiterite-sulfide (or Cu-polymetallic mineralization) stage, 3) massive pyrite stage, and 4) galena-sphalerite stage. Wallrock alterations are silicification, sericitization, sideritization, chloritization, tourmalinization, dolomitization, calcitization and fluoritization.
Large polymetallic deposit containing 1.5 Mt Zn, 0.30 Mt Pb, 0.30 Mt Cu, 75 kt Sn, and 3.3 kt Ag, as well 768 t In in an average grade of 112 ppm. Ore veins in this deposit are mainly hosted by Permian sandstone.
The Dajing deposit has yielded over 690 ore bodies, besides numerous stockworks and disseminations since its discovery in the 1970 s. The cumulative resources were estimated to consist of 84 kt of Sn, 330 kt of Cu, 1.98 Mt of Pb and Zn, and 4 kt of Ag, making the Dajing deposit one of the largest tin deposits in northern China. Notably, the Sn and Ag resources reach large sizes, while Cu resources correspond to a medium size. The polymetallic tin and sulfide ore bodies at Dajing are predominantly subterranean, influenced mainly by NW-trending faults and modified by post-mineralization tectonic events, resulting in Z-shaped. The No.7 orebody with an average grade of 1.58 % Cu, 0.33 % Pb and 0.6 % Zn, one of the most typical Cu polymetallic orebodies, mainly occurs in the marl segment of the Linxi Formation. The No.66 orebody, controlled by a fracture zone, is the most important Sn-Cu orebody with average grades of 0.76 % Cu and 0.45 % Sn. The extended depth, length, thickness, strike, and dip angle of the orebody are 190 m, 180 m, 0.22 –3.56 m, 100°-130°, and 46°-67°, respectively. High-grade zones of Sn (>1.12 %) and Cu (>4.7 %) are mainly located in the central part of the mining area. In contrast, high-grade Zn (>4%) and Pb (>3.75 %) demonstrate a strong regional association, mainly occurring at the northwest and southeast of the mining area.
Ore bodies in the Dajing deposit occur mainly as vein-filling bodies. They are widely distributed in space, but the mineralization is generally weak. Most ore bodies form beltlike zones that are subparallel to the main orebodies. Wall-rock alteration is diverse. The main alteration types are silicification, sericitization, chloritization, and carbonation. Local biotitization is also present. Spatially, silicification and sericitization dominate in the central part of the deposit and are closely associated with Cu–Sn mineralization. In contrast, carbonation is dominant in the eastern and northern sectors and is mainly related to Ag mineralization. Mineralization in the deposit shows pronounced spatial and temporal zonation. In plan view, the mineralization changes outward from Cu–Sn mineralization in the central part to Pb–Zn–Ag mineralization in the peripheral areas. In section, the mineralization changes from shallow Pb–Zn–Ag mineralization to deep Cu–Sn mineralization. Controlled by regional structures and stratigraphic lithologies, the orebodies generally occur at elevations above 300 m. The principal mineralized interval is concentrated between 400 and 800 m. Orebody thickness is commonly 0.5–1.5 m. The orebodies typically occur in clusters and belts. Several types of dikes are developed in the deposit, including fine-grained rock, dacite porphyry, and spotted basalt. Their dominant strikes are NW and NWW, broadly consistent with the regional fault trend.
Large polymetallic deposit containing 1.5 Mt Zn, 0.30 Mt Pb, 0.30 Mt Cu, 75 kt Sn, and 3.3 kt Ag, as well 768 t In in an average grade of 112 ppm. Ore veins in this deposit are mainly hosted by Permian sandstone.
The Dajing deposit has yielded over 690 ore bodies, besides numerous stockworks and disseminations since its discovery in the 1970 s. The cumulative resources were estimated to consist of 84 kt of Sn, 330 kt of Cu, 1.98 Mt of Pb and Zn, and 4 kt of Ag, making the Dajing deposit one of the largest tin deposits in northern China. Notably, the Sn and Ag resources reach large sizes, while Cu resources correspond to a medium size. The polymetallic tin and sulfide ore bodies at Dajing are predominantly subterranean, influenced mainly by NW-trending faults and modified by post-mineralization tectonic events, resulting in Z-shaped. The No.7 orebody with an average grade of 1.58 % Cu, 0.33 % Pb and 0.6 % Zn, one of the most typical Cu polymetallic orebodies, mainly occurs in the marl segment of the Linxi Formation. The No.66 orebody, controlled by a fracture zone, is the most important Sn-Cu orebody with average grades of 0.76 % Cu and 0.45 % Sn. The extended depth, length, thickness, strike, and dip angle of the orebody are 190 m, 180 m, 0.22 –3.56 m, 100°-130°, and 46°-67°, respectively. High-grade zones of Sn (>1.12 %) and Cu (>4.7 %) are mainly located in the central part of the mining area. In contrast, high-grade Zn (>4%) and Pb (>3.75 %) demonstrate a strong regional association, mainly occurring at the northwest and southeast of the mining area.
Ore bodies in the Dajing deposit occur mainly as vein-filling bodies. They are widely distributed in space, but the mineralization is generally weak. Most ore bodies form beltlike zones that are subparallel to the main orebodies. Wall-rock alteration is diverse. The main alteration types are silicification, sericitization, chloritization, and carbonation. Local biotitization is also present. Spatially, silicification and sericitization dominate in the central part of the deposit and are closely associated with Cu–Sn mineralization. In contrast, carbonation is dominant in the eastern and northern sectors and is mainly related to Ag mineralization. Mineralization in the deposit shows pronounced spatial and temporal zonation. In plan view, the mineralization changes outward from Cu–Sn mineralization in the central part to Pb–Zn–Ag mineralization in the peripheral areas. In section, the mineralization changes from shallow Pb–Zn–Ag mineralization to deep Cu–Sn mineralization. Controlled by regional structures and stratigraphic lithologies, the orebodies generally occur at elevations above 300 m. The principal mineralized interval is concentrated between 400 and 800 m. Orebody thickness is commonly 0.5–1.5 m. The orebodies typically occur in clusters and belts. Several types of dikes are developed in the deposit, including fine-grained rock, dacite porphyry, and spotted basalt. Their dominant strikes are NW and NWW, broadly consistent with the regional fault trend.
Select Mineral List Type
Standard Detailed Gallery Strunz Chemical ElementsCommodity List
This is a list of exploitable or exploited mineral commodities recorded at this locality.Mineral List
48 valid minerals.
Rock Types Recorded
Select Rock List Type
Alphabetical List Tree DiagramDetailed Mineral List:
Gallery:
List of minerals arranged by Strunz 10th Edition classification
| Group 1 - Elements | |||
|---|---|---|---|
| ⓘ | Native Gold var. Electrum | 1.AA.05 | (Au,Ag) |
| ⓘ | 1.AA.05 | Au | |
| ⓘ | Native Silver | 1.AA.05 | Ag |
| ⓘ | var. Küstelite | 1.AA.05 | Ag |
| Group 2 - Sulphides and Sulfosalts | |||
| ⓘ | Chalcocite | 2.BA.05 | Cu2S |
| ⓘ | Bornite | 2.BA.15 | Cu5FeS4 |
| ⓘ | Acanthite | 2.BA.35 | Ag2S |
| ⓘ | Stromeyerite | 2.BA.40 | AgCuS |
| ⓘ | Jalpaite | 2.BA.45 | Ag3CuS2 |
| ⓘ | Covellite | 2.CA.05a | CuS |
| ⓘ | Sphalerite | 2.CB.05a | ZnS |
| ⓘ | var. Marmatite | 2.CB.05a | (Zn,Fe)S |
| ⓘ | Chalcopyrite | 2.CB.10a | CuFeS2 |
| ⓘ | Stannite | 2.CB.15a | Cu2FeSnS4 |
| ⓘ | Cubanite | 2.CB.55a | CuFe2S3 |
| ⓘ | Pyrrhotite | 2.CC.10 | Fe1-xS |
| ⓘ | Galena | 2.CD.10 | PbS |
| ⓘ | Pyrite | 2.EB.05a | FeS2 |
| ⓘ | var. Arsenic-bearing Pyrite | 2.EB.05a | Fe(S,As)2 |
| ⓘ | Marcasite | 2.EB.10a | FeS2 |
| ⓘ | Arsenopyrite | 2.EB.20 | FeAsS |
| ⓘ | Cobaltite | 2.EB.25 | CoAsS |
| ⓘ | Skutterudite | 2.EC.05 | CoAs3 |
| ⓘ | Pyrargyrite | 2.GA.05 | Ag3SbS3 |
| ⓘ | Bournonite | 2.GA.50 | PbCuSbS3 |
| ⓘ | 'Freibergite Subgroup' | 2.GB.05 | (Ag6,[Ag6]4+)(Cu4 C2+2)Sb4S12S0-1 |
| ⓘ | 'Tennantite Subgroup' | 2.GB.05 | Cu6(Cu4C2+2)As4S12S |
| ⓘ | 'Tetrahedrite Subgroup' | 2.GB.05 | Cu6(Cu4C2+2)Sb4S12S |
| ⓘ | 'var. Silver-bearing Tetrahedrite' | 2.GB.05 | (Cu,Ag)6[Cu4(Fe,Zn)2]Sb4S13 |
| ⓘ | Stephanite | 2.GB.10 | Ag5SbS4 |
| ⓘ | Polybasite | 2.GB.15 | [Ag6Sb2S7][Ag9CuS4] |
| ⓘ | Miargyrite | 2.HA.10 | AgSbS2 |
| ⓘ | Boulangerite | 2.HC.15 | Pb5Sb4S11 |
| ⓘ | Benjaminite | 2.JA.05e | Ag3Bi7S12 |
| ⓘ | Matildite | 2.JA.20 | AgBiS2 |
| ⓘ | Diaphorite | 2.JB.05 | Ag3Pb2Sb3S8 |
| ⓘ | Freieslebenite | 2.JB.15 | AgPbSbS3 |
| ⓘ | Gustavite ? | 2.JB.40a | AgPbBi3S6 |
| ⓘ | Vikingite | 2.JB.40a | Ag5Pb8Bi13S30 |
| ⓘ | Ourayite | 2.JB.40c | Ag3Pb4Bi5S13 |
| Group 3 - Halides | |||
| ⓘ | Chlorargyrite | 3.AA.15 | AgCl |
| ⓘ | var. Bromine-bearing Chlorargyrite | 3.AA.15 | Ag(Cl,Br) |
| ⓘ | Fluorite | 3.AB.25 | CaF2 |
| Group 4 - Oxides and Hydroxides | |||
| ⓘ | Magnetite | 4.BB.05 | Fe2+Fe3+2O4 |
| ⓘ | Hematite | 4.CB.05 | Fe2O3 |
| ⓘ | Quartz | 4.DA.05 | SiO2 |
| ⓘ | Cassiterite | 4.DB.05 | SnO2 |
| ⓘ | 'Wolframite Group' | 4.DB.30 va | |
| Group 5 - Nitrates and Carbonates | |||
| ⓘ | Calcite | 5.AB.05 | CaCO3 |
| ⓘ | var. Manganese-bearing Calcite | 5.AB.05 | (Ca,Mn)CO3 |
| ⓘ | Siderite | 5.AB.05 | FeCO3 |
| ⓘ | Calcite var. Iron-bearing Calcite | 5.AB.05 | (Ca,Fe)CO3 |
| ⓘ | Ankerite | 5.AB.10 | Ca(Fe2+,Mg)(CO3)2 |
| ⓘ | Azurite | 5.BA.05 | Cu3(CO3)2(OH)2 |
| ⓘ | Malachite | 5.BA.10 | Cu2(CO3)(OH)2 |
| Group 8 - Phosphates, Arsenates and Vanadates | |||
| ⓘ | Wagnerite | 8.BB.15 | Mg2(PO4)F |
| Group 9 - Silicates | |||
| ⓘ | Zircon | 9.AD.30 | Zr(SiO4) |
| ⓘ | Epidote | 9.BG.05a | (CaCa)(AlAlFe3+)O[Si2O7][SiO4](OH) |
| ⓘ | Muscovite var. Illite | 9.EC.15 | K0.65Al2.0[Al0.65Si3.35O10](OH)2 |
| ⓘ | 9.EC.15 | KAl2(AlSi3O10)(OH)2 | |
| ⓘ | var. Sericite | 9.EC.15 | KAl2(AlSi3O10)(OH)2 |
| ⓘ | Albite | 9.FA.35 | Na(AlSi3O8) |
| Unclassified | |||
| ⓘ | 'Biotite' | - | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| ⓘ | 'Chlorite Group' | - | |
| ⓘ | 'Limonite' | - | |
| ⓘ | 'Tourmaline' | - | AD3G6(T6O18)(BO3)3X3Z |
| ⓘ | 'Melnikovite' | - | |
| ⓘ | 'K Feldspar' | - | |
List of minerals for each chemical element
| H | Hydrogen | |
|---|---|---|
| H | ⓘ Azurite | Cu3(CO3)2(OH)2 |
| H | ⓘ Biotite | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| H | ⓘ Epidote | (CaCa)(AlAlFe3+)O[Si2O7][SiO4](OH) |
| H | ⓘ Muscovite var. Illite | K0.65Al2.0[Al0.65Si3.35O10](OH)2 |
| H | ⓘ Malachite | Cu2(CO3)(OH)2 |
| H | ⓘ Muscovite | KAl2(AlSi3O10)(OH)2 |
| H | ⓘ Muscovite var. Sericite | KAl2(AlSi3O10)(OH)2 |
| B | Boron | |
| B | ⓘ Tourmaline | AD3G6(T6O18)(BO3)3X3Z |
| C | Carbon | |
| C | ⓘ Ankerite | Ca(Fe2+,Mg)(CO3)2 |
| C | ⓘ Azurite | Cu3(CO3)2(OH)2 |
| C | ⓘ Calcite | CaCO3 |
| C | ⓘ Calcite var. Manganese-bearing Calcite | (Ca,Mn)CO3 |
| C | ⓘ Malachite | Cu2(CO3)(OH)2 |
| C | ⓘ Siderite | FeCO3 |
| C | ⓘ Calcite var. Iron-bearing Calcite | (Ca,Fe)CO3 |
| O | Oxygen | |
| O | ⓘ Albite | Na(AlSi3O8) |
| O | ⓘ Ankerite | Ca(Fe2+,Mg)(CO3)2 |
| O | ⓘ Azurite | Cu3(CO3)2(OH)2 |
| O | ⓘ Biotite | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| O | ⓘ Calcite | CaCO3 |
| O | ⓘ Cassiterite | SnO2 |
| O | ⓘ Epidote | (CaCa)(AlAlFe3+)O[Si2O7][SiO4](OH) |
| O | ⓘ Hematite | Fe2O3 |
| O | ⓘ Muscovite var. Illite | K0.65Al2.0[Al0.65Si3.35O10](OH)2 |
| O | ⓘ Calcite var. Manganese-bearing Calcite | (Ca,Mn)CO3 |
| O | ⓘ Magnetite | Fe2+Fe23+O4 |
| O | ⓘ Malachite | Cu2(CO3)(OH)2 |
| O | ⓘ Muscovite | KAl2(AlSi3O10)(OH)2 |
| O | ⓘ Quartz | SiO2 |
| O | ⓘ Siderite | FeCO3 |
| O | ⓘ Tourmaline | AD3G6(T6O18)(BO3)3X3Z |
| O | ⓘ Wagnerite | Mg2(PO4)F |
| O | ⓘ Zircon | Zr(SiO4) |
| O | ⓘ Muscovite var. Sericite | KAl2(AlSi3O10)(OH)2 |
| O | ⓘ Calcite var. Iron-bearing Calcite | (Ca,Fe)CO3 |
| F | Fluorine | |
| F | ⓘ Biotite | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| F | ⓘ Fluorite | CaF2 |
| F | ⓘ Wagnerite | Mg2(PO4)F |
| Na | Sodium | |
| Na | ⓘ Albite | Na(AlSi3O8) |
| Mg | Magnesium | |
| Mg | ⓘ Ankerite | Ca(Fe2+,Mg)(CO3)2 |
| Mg | ⓘ Biotite | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| Mg | ⓘ Wagnerite | Mg2(PO4)F |
| Al | Aluminium | |
| Al | ⓘ Albite | Na(AlSi3O8) |
| Al | ⓘ Biotite | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| Al | ⓘ Epidote | (CaCa)(AlAlFe3+)O[Si2O7][SiO4](OH) |
| Al | ⓘ Muscovite var. Illite | K0.65Al2.0[Al0.65Si3.35O10](OH)2 |
| Al | ⓘ Muscovite | KAl2(AlSi3O10)(OH)2 |
| Al | ⓘ Muscovite var. Sericite | KAl2(AlSi3O10)(OH)2 |
| Si | Silicon | |
| Si | ⓘ Albite | Na(AlSi3O8) |
| Si | ⓘ Biotite | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| Si | ⓘ Epidote | (CaCa)(AlAlFe3+)O[Si2O7][SiO4](OH) |
| Si | ⓘ Muscovite var. Illite | K0.65Al2.0[Al0.65Si3.35O10](OH)2 |
| Si | ⓘ Muscovite | KAl2(AlSi3O10)(OH)2 |
| Si | ⓘ Quartz | SiO2 |
| Si | ⓘ Zircon | Zr(SiO4) |
| Si | ⓘ Muscovite var. Sericite | KAl2(AlSi3O10)(OH)2 |
| P | Phosphorus | |
| P | ⓘ Wagnerite | Mg2(PO4)F |
| S | Sulfur | |
| S | ⓘ Acanthite | Ag2S |
| S | ⓘ Arsenopyrite | FeAsS |
| S | ⓘ Benjaminite | Ag3Bi7S12 |
| S | ⓘ Bornite | Cu5FeS4 |
| S | ⓘ Boulangerite | Pb5Sb4S11 |
| S | ⓘ Bournonite | PbCuSbS3 |
| S | ⓘ Chalcopyrite | CuFeS2 |
| S | ⓘ Chalcocite | Cu2S |
| S | ⓘ Cobaltite | CoAsS |
| S | ⓘ Covellite | CuS |
| S | ⓘ Cubanite | CuFe2S3 |
| S | ⓘ Diaphorite | Ag3Pb2Sb3S8 |
| S | ⓘ Freibergite Subgroup | (Ag6,[Ag6]4+)(Cu4 C22+)Sb4S12S0-1 |
| S | ⓘ Freieslebenite | AgPbSbS3 |
| S | ⓘ Galena | PbS |
| S | ⓘ Gustavite | AgPbBi3S6 |
| S | ⓘ Jalpaite | Ag3CuS2 |
| S | ⓘ Marcasite | FeS2 |
| S | ⓘ Matildite | AgBiS2 |
| S | ⓘ Miargyrite | AgSbS2 |
| S | ⓘ Ourayite | Ag3Pb4Bi5S13 |
| S | ⓘ Polybasite | [Ag6Sb2S7][Ag9CuS4] |
| S | ⓘ Pyrargyrite | Ag3SbS3 |
| S | ⓘ Pyrite | FeS2 |
| S | ⓘ Pyrrhotite | Fe1-xS |
| S | ⓘ Sphalerite | ZnS |
| S | ⓘ Stannite | Cu2FeSnS4 |
| S | ⓘ Stephanite | Ag5SbS4 |
| S | ⓘ Stromeyerite | AgCuS |
| S | ⓘ Tennantite Subgroup | Cu6(Cu4C22+)As4S12S |
| S | ⓘ Tetrahedrite Subgroup | Cu6(Cu4C22+)Sb4S12S |
| S | ⓘ Vikingite | Ag5Pb8Bi13S30 |
| S | ⓘ Sphalerite var. Marmatite | (Zn,Fe)S |
| S | ⓘ Tetrahedrite Subgroup var. Silver-bearing Tetrahedrite | (Cu,Ag)6[Cu4(Fe,Zn)2]Sb4S13 |
| S | ⓘ Pyrite var. Arsenic-bearing Pyrite | Fe(S,As)2 |
| Cl | Chlorine | |
| Cl | ⓘ Chlorargyrite | AgCl |
| Cl | ⓘ Chlorargyrite var. Bromine-bearing Chlorargyrite | Ag(Cl,Br) |
| K | Potassium | |
| K | ⓘ Biotite | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| K | ⓘ Muscovite var. Illite | K0.65Al2.0[Al0.65Si3.35O10](OH)2 |
| K | ⓘ Muscovite | KAl2(AlSi3O10)(OH)2 |
| K | ⓘ Muscovite var. Sericite | KAl2(AlSi3O10)(OH)2 |
| Ca | Calcium | |
| Ca | ⓘ Ankerite | Ca(Fe2+,Mg)(CO3)2 |
| Ca | ⓘ Calcite | CaCO3 |
| Ca | ⓘ Epidote | (CaCa)(AlAlFe3+)O[Si2O7][SiO4](OH) |
| Ca | ⓘ Fluorite | CaF2 |
| Ca | ⓘ Calcite var. Manganese-bearing Calcite | (Ca,Mn)CO3 |
| Ca | ⓘ Calcite var. Iron-bearing Calcite | (Ca,Fe)CO3 |
| Ti | Titanium | |
| Ti | ⓘ Biotite | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| Mn | Manganese | |
| Mn | ⓘ Calcite var. Manganese-bearing Calcite | (Ca,Mn)CO3 |
| Fe | Iron | |
| Fe | ⓘ Ankerite | Ca(Fe2+,Mg)(CO3)2 |
| Fe | ⓘ Arsenopyrite | FeAsS |
| Fe | ⓘ Biotite | K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2 |
| Fe | ⓘ Bornite | Cu5FeS4 |
| Fe | ⓘ Chalcopyrite | CuFeS2 |
| Fe | ⓘ Cubanite | CuFe2S3 |
| Fe | ⓘ Epidote | (CaCa)(AlAlFe3+)O[Si2O7][SiO4](OH) |
| Fe | ⓘ Hematite | Fe2O3 |
| Fe | ⓘ Magnetite | Fe2+Fe23+O4 |
| Fe | ⓘ Marcasite | FeS2 |
| Fe | ⓘ Pyrite | FeS2 |
| Fe | ⓘ Pyrrhotite | Fe1-xS |
| Fe | ⓘ Siderite | FeCO3 |
| Fe | ⓘ Stannite | Cu2FeSnS4 |
| Fe | ⓘ Sphalerite var. Marmatite | (Zn,Fe)S |
| Fe | ⓘ Calcite var. Iron-bearing Calcite | (Ca,Fe)CO3 |
| Fe | ⓘ Tetrahedrite Subgroup var. Silver-bearing Tetrahedrite | (Cu,Ag)6[Cu4(Fe,Zn)2]Sb4S13 |
| Fe | ⓘ Pyrite var. Arsenic-bearing Pyrite | Fe(S,As)2 |
| Co | Cobalt | |
| Co | ⓘ Cobaltite | CoAsS |
| Co | ⓘ Skutterudite | CoAs3 |
| Cu | Copper | |
| Cu | ⓘ Azurite | Cu3(CO3)2(OH)2 |
| Cu | ⓘ Bornite | Cu5FeS4 |
| Cu | ⓘ Bournonite | PbCuSbS3 |
| Cu | ⓘ Chalcopyrite | CuFeS2 |
| Cu | ⓘ Chalcocite | Cu2S |
| Cu | ⓘ Covellite | CuS |
| Cu | ⓘ Cubanite | CuFe2S3 |
| Cu | ⓘ Freibergite Subgroup | (Ag6,[Ag6]4+)(Cu4 C22+)Sb4S12S0-1 |
| Cu | ⓘ Jalpaite | Ag3CuS2 |
| Cu | ⓘ Malachite | Cu2(CO3)(OH)2 |
| Cu | ⓘ Polybasite | [Ag6Sb2S7][Ag9CuS4] |
| Cu | ⓘ Stannite | Cu2FeSnS4 |
| Cu | ⓘ Stromeyerite | AgCuS |
| Cu | ⓘ Tennantite Subgroup | Cu6(Cu4C22+)As4S12S |
| Cu | ⓘ Tetrahedrite Subgroup | Cu6(Cu4C22+)Sb4S12S |
| Cu | ⓘ Tetrahedrite Subgroup var. Silver-bearing Tetrahedrite | (Cu,Ag)6[Cu4(Fe,Zn)2]Sb4S13 |
| Zn | Zinc | |
| Zn | ⓘ Sphalerite | ZnS |
| Zn | ⓘ Sphalerite var. Marmatite | (Zn,Fe)S |
| Zn | ⓘ Tetrahedrite Subgroup var. Silver-bearing Tetrahedrite | (Cu,Ag)6[Cu4(Fe,Zn)2]Sb4S13 |
| As | Arsenic | |
| As | ⓘ Arsenopyrite | FeAsS |
| As | ⓘ Cobaltite | CoAsS |
| As | ⓘ Skutterudite | CoAs3 |
| As | ⓘ Tennantite Subgroup | Cu6(Cu4C22+)As4S12S |
| As | ⓘ Pyrite var. Arsenic-bearing Pyrite | Fe(S,As)2 |
| Br | Bromine | |
| Br | ⓘ Chlorargyrite var. Bromine-bearing Chlorargyrite | Ag(Cl,Br) |
| Zr | Zirconium | |
| Zr | ⓘ Zircon | Zr(SiO4) |
| Ag | Silver | |
| Ag | ⓘ Acanthite | Ag2S |
| Ag | ⓘ Benjaminite | Ag3Bi7S12 |
| Ag | ⓘ Chlorargyrite | AgCl |
| Ag | ⓘ Diaphorite | Ag3Pb2Sb3S8 |
| Ag | ⓘ Native Gold var. Electrum | (Au,Ag) |
| Ag | ⓘ Chlorargyrite var. Bromine-bearing Chlorargyrite | Ag(Cl,Br) |
| Ag | ⓘ Freibergite Subgroup | (Ag6,[Ag6]4+)(Cu4 C22+)Sb4S12S0-1 |
| Ag | ⓘ Freieslebenite | AgPbSbS3 |
| Ag | ⓘ Gustavite | AgPbBi3S6 |
| Ag | ⓘ Jalpaite | Ag3CuS2 |
| Ag | ⓘ Matildite | AgBiS2 |
| Ag | ⓘ Miargyrite | AgSbS2 |
| Ag | ⓘ Ourayite | Ag3Pb4Bi5S13 |
| Ag | ⓘ Polybasite | [Ag6Sb2S7][Ag9CuS4] |
| Ag | ⓘ Pyrargyrite | Ag3SbS3 |
| Ag | ⓘ Native Silver | Ag |
| Ag | ⓘ Stephanite | Ag5SbS4 |
| Ag | ⓘ Stromeyerite | AgCuS |
| Ag | ⓘ Vikingite | Ag5Pb8Bi13S30 |
| Ag | ⓘ Tetrahedrite Subgroup var. Silver-bearing Tetrahedrite | (Cu,Ag)6[Cu4(Fe,Zn)2]Sb4S13 |
| Ag | ⓘ Native Silver var. Küstelite | Ag |
| Sn | Tin | |
| Sn | ⓘ Cassiterite | SnO2 |
| Sn | ⓘ Stannite | Cu2FeSnS4 |
| Sb | Antimony | |
| Sb | ⓘ Boulangerite | Pb5Sb4S11 |
| Sb | ⓘ Bournonite | PbCuSbS3 |
| Sb | ⓘ Diaphorite | Ag3Pb2Sb3S8 |
| Sb | ⓘ Freibergite Subgroup | (Ag6,[Ag6]4+)(Cu4 C22+)Sb4S12S0-1 |
| Sb | ⓘ Freieslebenite | AgPbSbS3 |
| Sb | ⓘ Miargyrite | AgSbS2 |
| Sb | ⓘ Polybasite | [Ag6Sb2S7][Ag9CuS4] |
| Sb | ⓘ Pyrargyrite | Ag3SbS3 |
| Sb | ⓘ Stephanite | Ag5SbS4 |
| Sb | ⓘ Tetrahedrite Subgroup | Cu6(Cu4C22+)Sb4S12S |
| Sb | ⓘ Tetrahedrite Subgroup var. Silver-bearing Tetrahedrite | (Cu,Ag)6[Cu4(Fe,Zn)2]Sb4S13 |
| Au | Gold | |
| Au | ⓘ Native Gold var. Electrum | (Au,Ag) |
| Au | ⓘ Native Gold | Au |
| Pb | Lead | |
| Pb | ⓘ Boulangerite | Pb5Sb4S11 |
| Pb | ⓘ Bournonite | PbCuSbS3 |
| Pb | ⓘ Diaphorite | Ag3Pb2Sb3S8 |
| Pb | ⓘ Freieslebenite | AgPbSbS3 |
| Pb | ⓘ Galena | PbS |
| Pb | ⓘ Gustavite | AgPbBi3S6 |
| Pb | ⓘ Ourayite | Ag3Pb4Bi5S13 |
| Pb | ⓘ Vikingite | Ag5Pb8Bi13S30 |
| Bi | Bismuth | |
| Bi | ⓘ Benjaminite | Ag3Bi7S12 |
| Bi | ⓘ Gustavite | AgPbBi3S6 |
| Bi | ⓘ Matildite | AgBiS2 |
| Bi | ⓘ Ourayite | Ag3Pb4Bi5S13 |
| Bi | ⓘ Vikingite | Ag5Pb8Bi13S30 |
Other Regions, Features and Areas containing this locality
Amur PlateTectonic Plate
AsiaContinent
China
- Da Hinggan Mountains Li Mineral BeltMineral Belt
- Inner Mongolia
- Southern Great Xing’an RangeMineral Belt
Eurasian Plate
- Bainaimiao-Ondor Sum BeltOrogenic Belt
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References
WANG, Yu Wang, WANG, Jing Bin, UEMOTO, Takeshi, WANG, Li Juan (2001) Geology and Mineralization at the Dajing Tin-polymetallic Ore Deposit, Inner Mongolia, China. Resource Geology, 51 (4) 307-320 doi:10.1111/j.1751-3928.2001.tb00104.x
LIU, Wei, LI, Xin-Jun, TAN, Jun (2001) Petrogenetic and Metallogenetic Background of the Dajing Cu-Sn-Ag-Pb-Zn Ore Deposit, Inner Mongolia, and Characteristics of the Mineralizing Fluid. Resource Geology, 51 (4) 321-331 doi:10.1111/j.1751-3928.2001.tb00105.x
[1]Liu, Hongyu; Mei, Wei; Lv, Xinbiao; Cao, Xiaofeng; Ruan, Banxiao; Yu, Qihang (2024) Genesis and evolution of the Dajing tin-copper polymetallic deposit in Inner Mongolia: Constraints from geochronology, mineral composition, and S-Pb-H-O isotopes. Ore Geology Reviews, 175. doi:10.1016/j.oregeorev.2024.106373
[2]He, Yanping; Sun, Zhenjun; Xu, Wentan; Yu, Henan; Ren, Yunsheng; Li, Zhenzhen; Guan, Mengfan; Zhen, Zhiwen (2026) Ore Genesis of the Dajing Cu–Sn Polymetallic Deposit in the Southern Great Xing’an Range, NE China: Constraints from In Situ S-Pb Isotope and Electron-Microprobe Data of Sulfides. Minerals, 16 (6). doi:10.3390/min16060589

Dajing Sn-Cu-polymetallic deposit, Linxi County, Chifeng City, Inner Mongolia, China