PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

The Cyclops Mountains Massif (New Guinea, Indonesia) as the provenance area for metal-bearing shelf sediments from the Carolinian Sea

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In 2009, on the initiative of PT Halmahera Perkasa the “Jayapura” exploration project was carried out in Indonesia. As part of this project, exploration of the sea bottom in the northern coast of New Guinea was carried out over a distance of ~45 km. The suction dredge collected 59 samples of loose sediments from the shelf bottom surface of the Carolinian Sea (to a depth of 60 m below the sea-floor). The extracted samples are usually poorly and moderately sorted sands (5 samples), medium-grained sands (21 samples), and fine-grained sands (33 samples). The sand composition shows, among others, a wide spectrum of heavy minerals of ultra-mafic (Cr-garnet, chromium spinel, Mg-olivine) and metamorphic (epidote, clinochlore, amphibole, titanite) origin. The content of heavy minerals in the sediments is up to 54.77 wt.%. It was found that the source of heavy fraction in the eastern and western parts of the coast is the rock of the ophiolite series building the Cyclops Mountains Massif. The mineral composition of sediments from the central coastal zone corresponds to the types of rocks building the metamorphic core of the Cyclops Mountains (amphibolite, gneisses, andesite). Three mineral-geochemical subprovinces were determined on the basis of analyses of heavy mineral decomposition and chemical analyses of sediments. Shelf sediment from the eastern part of the coast is characterized by an increased content of strategic metals (Ni up to 3560, W up to 3130 and Co up to 142 ppm). In the central zone, the V content increases up to 244 ppm and the Ag content up to 5 ppm. In the shelf sediments there is a strong depletion in the REE.
Rocznik
Strony
480--491
Opis fizyczny
Bibliogr. 60 poz., fot., map., rys., tab., wykr.
Twórcy
  • Polish Geological Institute - National Research Institute, Rakowiecka 4, 00-975 Warszawa, Poland
  • Polish Geological Institute - National Research Institute, Rakowiecka 4, 00-975 Warszawa, Poland
Bibliografia
  • 1. Baker, G., 1955. Part I distribution, nature and chemical composition of the basement complex rocks. nova guinea, new ser., 6: 307-328.
  • 2. Baker, G., 1956. Part II opaque minerals in the basement complex rocks. Nova Guinea, new ser., 7: 15-31.
  • 3. Bhatia, M.R., 1983. Plate tectonics and geochemical composition of sandstones. The Journal of Geology, 91: 611-627.
  • 4. Bhatia, M.R., Crook, K.A.W., 1986. Trace element characteristics of greywackes and tectonic setting discrimination of sedimentary basins. Contributions to Mineralogy and Petrology, 92: 181-193.
  • 5. Blott, S.J., Pye, K., 2001. Gradistat: a grain size distribution and statistics package for the analysis of unconsolidated sediments. Earth Surface Processes and Landforms, 26: 1237-1248.
  • 6. Cloos, M., Sapiie, B., Quarles van Ufford, A., Weiland, R.J., Warren, P.Q., McMahon, T.P., 2005. Collisional delamination in New Guinea: The geotectonics of subducting slab breakoff. GSA Special Papers, 400: 1-51.
  • 7. Cullers, R.L., Podkovyrov, V.N., 2000. Geochemistry of the Mesoproterozoic Lakhanda Shales in southeastern Yakutia, Russia: Implications for mineralogical and provenance control recycling. Precambrian Research, 104: 77-93.
  • 8. Davies, H.L., 2012. The geology of New Guinea - the cordilleran margin of the Australian continent. Episodes, 35: 87-102.
  • 9. De Baar, H.J.W., Bacon, M.P., Brewer, P.G., Bruland, K.W., 1985. Rare earth elements in the Pacific and Atlantic Oceans. Geochimica et Cosmochimica Acta, 49: 1943-1959.
  • 10. Depowski, S., Kotliński, R., Rühle, E., Szamałek, K., 1998. Surowce mineralne mórz i oceanów (in Polish). Wydawnictwo Scholar, Warszawa.
  • 11. Dergatchev, A.L., Eemin, N.I., Sergeeva, N.E., 2011. Volcanic-associated Besshi-type copper sulfide deposits. Moscow University Geology Bulletin, 66: 274-281.
  • 12. Floyd, P.A., Leveridge, B.E., 1987. Tectonic environment of the Devonian Gramscatho Basin, South Cornwall: framework mode and geochemical evidence from turbiditic sandstones. Journal of the Geological Society, 144: 531-542.
  • 13. Garzanti, E., Andò, S., 2007. Heavy mineral concentration in modern sands: implications for provenance interpretation. Developments in Sedimentology, 58: 517-541.
  • 14. Gisolf, W.F., 1921. Microscopisch onderzoek van gesteenten van Noord-Nieuw-Guinea. Jaarboek v.h. Mijnwezen in Nederl. Oost-Indië. Verhandelingen, eerste gedeelte: 133-161.
  • 15. Hamilton, W., 1979. Tectonics of the Indonesian region. U.S. Geological Survey Prof. Paper, 1078.
  • 16. Kazuhiro, T., Nakamura, Y., Masuda, A., 1990. Rare earth elements of Pacific pelagic sediments. Geochimica et Cosmochimica Acta, 54: 1093-1103.
  • 17. Kotliński, R.A., 2001. Mineral resources of the world's ocean - their importance for global economy in the 21st century. In: Proceedings of 4th ISOPE Ocean Mining Symposium: 1-7. Szczecin, Poland: International Society for Offshore and Polar Engineers.
  • 18. Krause, D.C., 1965. Submarine geology north of New Guinea. GSA Bulletin, 76: 27-42.
  • 19. Kudrass, H.R., 1987. Sedimentary models to estimate the heavy-mineral potential of shelf sediments. Marine Minerals, 194: 39-56.
  • 20. Liu, Z., Wang, H., Hantoro, W.S, Sathiamurthy, E., Colin, C., Zhao, Y., Li, J., 2012. Climatic and tectonic controls on chemical weathering in tropical Southeast Asia (Malaya Peninsula, Borneo and Sumatra). Chemical Geology, 291: 1-12.
  • 21. McLennan S., 1989. Rare earth elements in sedimentary rocks; influence of provenance and sedimentary processes. Reviews in Mineralogy and Geochemistry, 21: 169-200.
  • 22. McLennan, S.M., Taylor, S.R., McCulloch, M.T., Maynard, J.B., 1990. Geochemical and Nd-Sr isotopic composition of deep-sea turbidites: crustal evolution and plate tectonic associations. Geochimica et Cosmochimica Acta, 54: 2015-2050.
  • 23. Miller, A.J., Kuehl, S.A., 2009. Shelf sedimentation on a tectonically active margin: a modern sediment budget for Poverty continental shelf, New Zealand. Marine Geology, 270: 175-187.
  • 24. Milliman, J.D., 1995. Sediment discharge to the ocean from small mountainous rivers: the New Guinea example. Geo-Marine Letters, 15: 127-133.
  • 25. Milliman, J.D., Syvitski, P.M., 1992. Geomorphic/tectonic control of sediment discharge to the Ocean: the importance of small mountains rivers. The Journal of Geology, 100: 524-544.
  • 26. Monnier, C., Girardeau, J., Pubellier, M., Polve, M., Permana, H., Bellon, H., 1999. Petrology and geochemistry of the Cyclops ophiolites (Irian Jaya-East Indonesia): consequences for the evolution of the North Australian margin during Cenozoic. Mineralogy and Petrology, 65: 1-28.
  • 27. Morton, C.A., Hallsworth, C., 1994. Identifying provenance-specific features of detrital heavy mineral assemblages in sandstones. Sedimentary Geology, 90: 241-256.
  • 28. Morton, C.A., Hallsworth, C., 1999. Processes controlling the composition of heavy mineral assemblages in sandstones. Sedimentary Geology, 124: 3-29.
  • 29. Morton, C.A., Smale, D., 1990. The effects of transport and weathering on heavy minerals from the Cascade River, New Zealand. Sedimentary Geology, 68: 117-123.
  • 30. Mosier, D.L., Singer, D.A., Moring, B.C., Galloway, J.P., 2012. Podiform chromite deposits-database and grade and tonnage models. U.S. Geological Survey Scientifc Investigations Report 2012-5157, 45 p. and database.
  • 31. Peta Sebaran Bahan Galian Dan Potensi Hidrokarbon Propinsi Irian Jaya, 1995. Skala 1:2,000,000. Kantor Wilayah Departemen Pertambangan Dan Energi Propinsi Irian Jaya.
  • 32. Pieters, P.E., Ryburn, R.J., Trail, D.S., 1979. Geological reconnaissance in Irian Jaya, 1976 and 1977. Department of National Development, Bureau of Geology and Geophysics and Mineral Resources, Canberra.
  • 33. Piper, D.Z., Bau, M., 2013. Normalized Rare Earth Elements in water, sediments, and wine. Identifying Sources and Environmental Redox Conditions American Journal of Analytical Chemistry, 4: 69-83.
  • 34. Pramod, S., Rajamani, V., 2001. REE geochemistry of recent clastic sediments from the Kaveri floodplains, southern India: implication to source area weathering and sedimentary processes. Geochimica et Cosmochimica Acta, 65: 3093-3108.
  • 35. Pubellier, M., Monnier, C., Maury, R., Tamayo, R., 2004. Plate kinematics, origin and tectonic emplacement of supra-subduction ophiolites in SE Asia. Tectonophysics, 392: 9-36.
  • 36. Rosa, F., Rufino, M.M., Ferreira, Ó., Matias, A., Brito, A.C., Gaspar, M.B., 2013. The influence of coastal processes on inner shelf sediment distribution: the Eastern Algarve Shelf (Southern Portugal). Geologica Acta, 11: 59-73.
  • 37. Rudnick, R.L., Gao, S. 2003. The composition of the continental crust. Treatise on Geochemistry - The Crust, 3: 1-64.
  • 38. Sato, T., 1977. Kuroko deposits: their geology, geochemistry and origin. Geological Society, London, Special Publications, 7: 153-161.
  • 39. Smirnow, W.I., 1986. Geologia złóż kopalin użytecznych (in Polish). Wyd. Geol., Warszawa.
  • 40. Sun, W., Wang, J., Zhang, Li., Zhang, Ch., Li, H., Ling, M., Ding, X., Li., C., Lian, H., 2017. The formation of porphyry copper deposits. Acta Geochimica, 36: 9-15.
  • 41. Szamałek, K., Mizerski, W., 2011. Surowce mineralne z dna mórz i oceanów - stan rozpoznania i perspektywy (in Polish). Górnictwo i Geoinżynieria, 35: 353-370.
  • 42. Szamałek, K., Konopka, G., Zglinicki, K., Marciniak-Maliszewska, B., 2013. New potential source of rare earth elements. Gospodarka Surowcami Mineralnymi - Mineral Resources Managment, 29: 59-76.
  • 43. Szamałek, K., Zglinicki, K., Konopka, G., Marciniak-Maliszewska, B., 2015. Osady okruchowe strefy płytkowodnej oraz plażowej wybranych regionów Indonezji. Górnictwo Odkrywkowe, 56: 14-20.
  • 44. Szamałek, K., Uścinowicz, Sz., Zglinicki, K., 2018. Rare earth elements in Fe-Mn nodules from the Southern Baltic Sea - a preliminary study. Biuletyn Państwowego Instytutu Geologicznego, 472: 199-212.
  • 45. Terry, C.H., Charles, H., 1998. The chemical composition of subducting sediment and its consequences for the crust and mantle. Chemical Geology, 145: 325-394.
  • 46. Thirnbeck, M.R., 2001. The Sentani and Siduarsi nickel-cobalt laterite deposits, Northeast Irian Jaya, Indonesia. In: Proc. PNG Geology, Exploration and Mining Conference (eds. G. Hancock) Australasian Inst. Mining Metall., Melbourne.
  • 47. Thirnbeck, M.R., 2004. A search for gold in Indonesian New Guinea. In: Proc. PACRIM 2004 Conf., Hi tech and world competitive mineral success stories around the Pacific Rim, Adelaide 2004, Australasian Inst. Mining Metall., Parkville.
  • 48. Tixeront, M., 1978. French activities in the exploration for placers on the continental shelves. International seminar on offshore mineral resources. Orleans, France: Germinal and BRGM: 167-184.
  • 49. Tregoning, P., Gorbatov, A., 2004. Evidence for active subduction at the New Guinea Trench. Geophysical Research Letters, 31: 1-4.
  • 50. Ubaghs, Ir.J.G.H., 1955. Mineral deposits in the Cyclops Mountains, Netherlands New Guinea. Nova Guinea, new ser., 6: 167-175.
  • 51. UNCLOS - United Nations Convention on the Law of the Sea of 10 December 1982. https://www.un.org/Depts/los/convention_agreements/convention_overview_convention.htm.
  • 52. Van Gosen, B.S., Fey, D.L., Shah, A.K., Verplanck, P.L., Hoefen, T.M., 2014. Deposit model for heavy-mineral sands in coastal environments. U.S. Geological Survey Scientific Investigations Report.
  • 53. Verstappen, H., 1975. On palaeoclimates and landform development in Malaysia. In: Modern Quatornary Research in Southeast Asia (eds. G.J. Bartstra et al.): 3-35.
  • 54. Wentworth, C.K., 1922. A scale of grade and class terms for clastic sediments. The Journal of Geology, 30: 377-392.
  • 55. Wołkowicz, S., Paulo, A. 2019. Blue mining in the Atlantic Ocean-arealneed or a need for realism? (in Polish with English summary). Przegląd Geologiczny, 67: 91-103.
  • 56. Yan, B., Yan, W., Miao L., Huang L., Chen, Z., 2010. Geochemical characteristics and provenance implications of rare earth elements in surface sediments from bays along Guangdong Coast, Southeast China. Environmental Earth Science, 65: 2195-2205.
  • 57. Yang, S.Y., Hoi, S.J., Choi, S.M., Li, C.X., 2002. The rare earth element compositions of the Changjiang (Yangize) and Huanghe (Yellow) river sediments. Earth and Planetary Science Letters, 201: 407-419.
  • 58. Yang, S., Li, C., Lee, C.B., Na, T.K., 2003. REE geochemistry of suspended sediments from the rivers around the Yellow Sea and provenance indicators. Chinese Science Bulletin, 48: 1135-1139.
  • 59. Zglinicki, K., 2016. The geological-mineralogical characteristic of the contemporary coastal marine sediments of Jayapura Regency (Indonesian part of New Guinea). Ph.D. thessis (in Polish), Archive of Institute of Geochemistry, Mineralogy and Petrology, Faculty of Geology, Warsaw University.
  • 60. Zwierzycki, J., 1921. Verslag over geologisch-mijnbouwkundige onderzoekingen in een gedeelte van Noord-Nieuw-Guinea. Jaarboek Mijnwezen Nederlandsch Oost-Indië. Verhandelingen, 50: 95-132.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-9fae5b12-c4b6-4a72-ae88-25769b136ff4
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.