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Paragenesis of stratiform zinc-lead mineralisation from Besti Gol, Chitral, Hindu Kush, Northern Pakistan

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Abstract

Zinc-lead mineralisation in Besti Gol, Chitral is located within the Hindu Kush terrane, 60 km to the northwest of Northern suture that marks the suture zone between the Karakoram plate and the Kohistan island arc. A small suture zone, Tirich Boundary Zone, is located 20 km to the northeast of the investigated area that separates the Karakoram from East Hindu Kush. The zinc-lead mineralisation is mainly confined to a marble horizon within the Jurassic Arkari Formation. The conformability of the sulphide-mineralised zone with the host marble indicates that it has been precipitated in synsedimentary environment and can be classed as a stratiform deposit. The salinities of hydrothermal fluids at Besti Gol range from 2 to 14 wt % NaCl equivalent, indicating that brines generated in a sedimentary basin were responsible for the precipitation of these deposits during diagenesis. Subsequent metamorphism induced distinct textural changes in ore minerals during recrytallisation. Coarse grain size, euhedral morphology and triple junction in the calcite also specify metamorphism. The variation of FeS content in sphalerite indicates crytallisation during sedimentation or a low-pressure-temperature environment followed by high temperature, sulphur and oxygen fugacity during the metamorphism. This was followed by the hydrothermal activities where sphalerite was converted into smithsonite and hydrozincite, and galena into cerussite and plattnerite. The enrichment of the F, Li, As, Rb, Ba, Sc and Zr as compared to average carbonate rocks, coupled with the positive correlation among trace elements such as As with Ba, Sc and Sr within the marble beds, further establishes hydrothermal alteration. The study area has undergone at least two phases of deformation in a collisional environment. It is concluded that the early phases of stratiform zinc-lead mineralisation may have been deposited during the closure of the suture zone, Tirich Boundary Zone, which lies to the SW of the mineralised zone.

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References

  • Almeida A, Noronha F (1988) Fluids associated with W and Ag-Au deposits of the Mirandale area, NE Portugal: an example of peri-granitic zoning. Bull de Min 111:331–341

    Google Scholar 

  • Basuki NI, Spooner ETC (2004) A review of fluid inclusion temperatures and salinities in Mississippi valley-type Zn-Pb deposits: identifying thresholds for metal transport. Explor Min Geol 11(1–4):1–17

    Google Scholar 

  • Bottrell SH, Carr LP, Dubessy J (1988) A nitrogen-rich metamorphic fluid and coexisting minerals in slates from North Wales. Min Mag 52:451–457

    Article  Google Scholar 

  • Bowles JFW, Howie RA, Vaughan DJ, Zussman J (2011) Rock-forming minerals: Non-silicates: oxides, hydroxides and sulphides, vol 5A. Geol Soc, London

    Google Scholar 

  • Briskey JA (1986) Descriptive model of sedimentary exhalative Zn–Pb. In: Cox DP, Singer DA (eds.), Mineral Deposit Models, US Geol Surv Bull, 1693:211–212

  • Calkins JA, Jamiluddin S, Bhuyan K, Hussain A (1981) Geology and mineral resources of the Chitral-Partsan area, Hindu Kush range, Northern Pakistan. US Geol Surv Prof Pap 716-G:33

    Google Scholar 

  • Crawford ML (1981) Fluid inclusions in metamorphic rocks -low and medium grade In: Hollister, L S & Crawford, M L (eds.), Short course in fluid inclusion: applications to petrology Min Ass Can 6:157-181

  • Crawford ML (1992) Fluid inclusions—what can we learn? Earth Sci Rev 32:137–139

    Article  Google Scholar 

  • Edwards R, Atkinson K (1986) Ore deposit geology. Chapman and Hall, London

    Google Scholar 

  • Frondel C, Baum JL (1974) Structure and mineralogy of the Franklin zinc-iron-manganese deposits, New Jersey. Econ Geol 69:157–180

    Article  Google Scholar 

  • Gilg HA, Boni M, Balassone G, Allen CR, Banks D, Moore F (2006) Marble-hosted sulfide ores in the Angouran Zn-(Pb–Ag) deposit, NW Iran: interaction of sedimentary brines with a metamorphic core complex. Min Depo 41:1–16

    Article  Google Scholar 

  • Graf DL (1960) Geochemistry of carbonate sediments and sedimentary carbonate rocks. Part 3, Illinois State Geol Surv Circ 301

  • Gustafson LB, Williams N (1981) Sediment-hosted stratiform deposits of copper, lead, and zinc. Econ Geol 75th Anniv Vol: 139-178

  • Heuberger S, Schaltegger U, Burg J-P, Villa IM, Frank M, Dawood H, Hussain, Zanchi A (2007) Age and isotopic constraints on magmatism along the karakoram-kohistan suture zone, NW Pakistan: evidence for subduction and continued convergence after India-Asia collision. Swiss J Geosci 100:85–107

    Article  Google Scholar 

  • Jambor JL (1964) Studies of basic copper and zinc carbonates: synthetic zinc carbonates and their relationship to hydrozincite. Can Mineral 8:92–108

    Google Scholar 

  • Large DE (1981) Sediment-hosted submarine exhalative lead-zinc deposits—a review of their geological characteristics and genesis. In: Wolf KH (ed) Handbook of strata-bound and stratiform ore deposits, vol 9. Elsevier, Amsterdam, pp 469–507

    Google Scholar 

  • Leach DL, Sangster DF, Kelley KD, Large RR, Garven G, Allen CR, Gutzmer J, Walters S (2005) Sediment-hosted lead-zinc deposits: A global perspective: Econ Geology 100th Anniv Vol: 561 − 608

  • Leach DL, Bradley DC, Huston D, Pisarevsky SA, Taylor RD, Gardoll SJ (2010) Sediment-hosted lead-zinc deposits in earth history. Econ Geol 105:593–625

    Article  Google Scholar 

  • Leake RC, Fletcher CJN, Haslam HW, Khan B, Shakirullah (1989) Origin and tectonic setting of stratabound tungsten mineralisation within the Hindu Kush of Pakistan. J Geol Soc Lond 146:1003–1016

    Article  Google Scholar 

  • Lepetit P, Bente K, Doering T, Luckhaus S (2003) Crystal chemistry of Fe-containing sphalerites. Phys Chem Min 30:185–91

    Article  Google Scholar 

  • Lindstrom RM, Anderson DL (1985) Analytical neutron-capture gamma-ray spectroscopy: status and prospects. In: Ramau, S. (ed), Capture Gamma-ray Spectroscopy and related topics, 810

  • Lueth VW, Megaw KMP, Pingitore NE, Goodell PC (2000) Systematic variation in galena solid-solution compositions at Santa Eulalia, Chihuahua, Mexico. Econ Geol 95:1673–87

    Google Scholar 

  • Moles NR (1983) Sphalerite composition in relation to deposition and metamorphism of the Foss stratiform Ba-Zn-Pb deposit, Aberfeldy, Scotland. Min Mag 47:487–500

    Article  Google Scholar 

  • Mullis J (1979) The system methane-water as a geologic thermometer and barometer from the external part of the Central Alps. Bull Miner 102:526–536

    Google Scholar 

  • Osman K, Uluso U, Ahmet E (2005) A study of sulfur isotopes in determining the genesis of Goynuk and Celaldagi Desandre Pb–Zn deposits, Eastern Yahyali, Kayseri, Central Turkey. J Asian Earth Sci 25:279–289

    Article  Google Scholar 

  • Palache C, Berman H, Frondel C (1944) Dana’s system of mineralogy, vol 1. Wiley, New York

    Google Scholar 

  • Palache C, Berman H, Frondel C (1951) Dana’s system of mineralogy, vol 2. Wiley, New York

    Google Scholar 

  • Poutiainen M (1990) Evolution of a metamorphic fluid during progressive metamorphism in the Joroinen-Sulkava area, southeastern Finland, as indicated by fluid inclusions. Min Mag 54:207–218

    Article  Google Scholar 

  • Pudsey CJ, Coward MP, Luff IW, Shackleton RM, Windley BF, Jan MQ (1985) Collision zone between the Kohistan arc and the Asian plate in NW Pakistan. Trans R Soc Edinburgh 76:463–479

    Article  Google Scholar 

  • Roedder E (1984) Fluid inclusions. Rev Min 12, Min Soc America

  • Sangster DF (2002) The role of dense brines in the formation of wentdistal sedimentary-exhalative (Sedex) lead–zinc deposits: field and laboratory evidence. Min Depo 37(2):149–157

    Article  Google Scholar 

  • Saunders CM, Strong DF, Sangster DF (1992) Carbonate-hosted lead-zinc deposits of western Newfoundland. Geol Surv Can Bull 419:1–78

    Google Scholar 

  • Scott SD (1983) Chemical behaviour of sphalerite and arsenopyrite in hydrothermal and metamorphic environments. Min Mag 47:427–435

    Article  Google Scholar 

  • Scott SD, Barnes HL (1971) Sphalerite geothermometry and geobarometry. Econ Geol 66:653–669

    Article  Google Scholar 

  • Stanton RL (1972) Ore petrology. McGraw-Hill Inc, New York

    Google Scholar 

  • Turekian KK, Wedepohl KH (1961) Distribution of the elements in some major units of the earth crust. Geo Soc Am Bull 72:175–192

    Article  Google Scholar 

  • Wilkinson JJ (1990) The role of metamorphic fluids in the development of the Cornubian ore field: fluid inclusion evidence from south Cornwall. Min Mag 54:219–230

    Article  Google Scholar 

  • Zafar M, Murata M, Ali A, Jabeen I, Khan T, Ozawa H, Nishimura H (2001) Oxygen isotope compositions of Miocene garam chashma granites, trans Himalayas (hindukush range), N Pakistan. J Min Petrol Sci 96:197–204

    Article  Google Scholar 

  • Zahid M (1996) Genesis of stratabound scheelite and stratiform Pb-Zn mineralisation Chitral, Northern Pakistan, and its comparison with S-W England tin-tungsten deposits. Unpub Ph D thesis, University of Leicester, UK

  • Zahid M, Arif M, Moon CJ (2013) Petrogenetic implications of the mineral-chemical characteristics of scheelite and associated phases from Miniki Gol (Chitral), NW Pakistan. Geosci J 17(4):403–416. doi:10.1007/s12303-013-0035-x

    Article  Google Scholar 

  • Zahid M, Arif M, Moon CJ (2014) Mineralogy and geochemistry of leucogranite from Miniki Gol (Chitral), northern Pakistan: implications for petrogenesis and mineralization. Arab J Geosci. doi:10.1007/s12517-014-1626-1

    Google Scholar 

  • Zanchi A, Gaetani M (2011) The geology of the Karakoram range, Pakistan: the new 1:100,000 geological map of Central-Western Karakoram. Ital J Geosci (Boll So Geol It) 130 (2) doi: 10.3301/IJG.2010.26

  • Zeng N, Izawa E, Motomura Y, Lai L (2000) Silver minerals and paragenesis in the Kangjiwan Pb-Zn-Ag-Au deposit of the Shuikoushan mineral district, Hunan Province, China. Can Min 38:11–22

    Article  Google Scholar 

Download references

Acknowledgments

The Association of the Commonwealth Universities in UK financed this study. Mr. Rob Kelly helped in preparing samples and Mr. Nick Marsh facilitated the performance of analytical work at the Department of Geology, University of Leicester, UK. Dr. David Alderton helped in the microthermometric analyses of the fluid inclusions at Royal Holloway and Bedford New College, University of London. The paper benifited from useful suggestions of an anonymous reviewer.

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Zahid, M., Moon, C.J. & Jan, M.Q. Paragenesis of stratiform zinc-lead mineralisation from Besti Gol, Chitral, Hindu Kush, Northern Pakistan. Arab J Geosci 8, 8643–8654 (2015). https://doi.org/10.1007/s12517-015-1780-0

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