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Location of agate geodes in Permian deposits of Simota gully using the GPR

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EN
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EN
The article describes the establishment of the location of agate geodes using the GPR method in the area of the Simota gully (Lesser Poland Voivodeship). Agates (a multicolored variety of gemstone of chalcedony group) have multifaceted values that informed their study. Traditional methods of geode location are less reliable, hence the attempt to use the GPR method. Measurements were taken at two study test sites with subsurface geology of weathered melaphyre and pyroclastic deposits using a GPR system (ProEx). A high-frequency antenna (1.6 GHz) was used along with the pre-established profles of lengths of 6-m and 10-cm intervals. Furthermore, simple soil tests using the soil sampler tool were made prior to the GPR measurement. The GPR results show signifcant high attenuation of the electromagnetic energy interpreted to be due to clay components of the regolith. Advanced signal processing procedures (such as the attribute of the signal) were used on the data for better enhancement that aided interpretation. Other anomalies depicted on the radargrams were thought to be the presence of roots, pieces of melaphyres-targeted agates. Furtherance to ascertain the refection coefcients as recorded on the GPR data, in situ samples (root pieces, melaphyres, agates) taken were tested in the laboratory for electric permittivity property. Based on the interpretation results, several agate geodes were dug out from the ground.
Czasopismo
Rocznik
Strony
655--664
Opis fizyczny
Bibliogr. 29 poz.
Twórcy
  • Faculty of Geology, Geophysics and Environmental Protection, AGH University of Science and Technology, 30-059 Kraków, Poland
  • Faculty of Geology, Geophysics and Environmental Protection, AGH University of Science and Technology, 30-059 Kraków, Poland
Bibliografia
  • 1. Akinsunmade A, Karczewski J, Mazurkiewicz E, Tomecka-Suchoń S (2019) Finite-difference time domain (FDTD) modeling of ground penetrating radar pulse energy for locating burial sites. Acta Geophys 67(6):1945–1953
  • 2. Aranha PRA, Horn AH, Joncew HC (2018) Use of GPR in pegmatite mining: example of a sheetlike body from northern Minas Gerais. Brazil Rom J Mineral Deposits 91(1–2):7–12
  • 3. Birkenmajer K, Nairn AEM (1964) Palaeomagnetic Studies of Polish Rocks. Roczniki Polskiego Towarzystwa Geologicznego, XXXIV 1–2:229–231
  • 4. Chocyk M (1990) Late paleozoic pyroclastic deposits from Regulice near Alwernia [in Polish]. Przegląd Geologiczny 38:390–393
  • 5. Cook FA (1997) (1997) Applications of Geophysics in Gemstone Exploration. Gems & Gemology, Spring 33(1):4–23
  • 6. Daniels DJ (ed) (2004) Ground penetrating radar -2nd edition. The Institution of Electrical Engineers, London
  • 7. Dumańska-Słowik M, Natkaniec-Nowak L, Wesełucha-Birczyńska A, Gaweł A, Lankosz M, Wróbel P (2013) Agates from Sidi Rahal, in the Atlas Mountains of Morocco: Gemological Characteristics and Proposed Origin. Gems Gemology Fall. 49(3):148–159
  • 8. Francke J (2012) A review of selected ground penetrating radar applications to mineral resource evaluations. J Appl Geophys 81:29–37
  • 9. Hammer PTC, Clowes RM, Ramachandran K (2004) Seismic reflection imaging of thin, kimberlite dykes and sills: exploration and deposit characterization of the Snap Lake dyke, Canada. Lithos 76:359–367
  • 10. Horn AH, Aranha PRA, Joncew HC (2018) Combined mineralochemical, statistical and geophysical (GPR) data as support for the exploration of pegmatite-hosted gemstones: example from the Santa Rosa mine, MG. Brazil Rom J Mineral Deposits 91(1–2):1–6
  • 11. Irvine RJ, Smith MJ (1990) Geophysical exploration for epithermal gold deposits. J Geochem Explor 36(1–3):375–412
  • 12. Jaworski K (1993) Objaśnienia do SMGP arkusz 972 Krzeszowice, SMGP
  • 13. Jol HM (ed.) (2008), Ground penetrating radar theory and applications. Elsevier
  • 14. Karczewski J (2011) Application of GPR method to investigate in protected areas. Polish J Environ Stud 20(4A):115–119
  • 15. Karczewski J, Ortyl Ł, Pasternak M (2011) The outline of GPR method. [in Polish]. Wydawnictwa AGH, Kraków
  • 16. Krawczyński W (1995) Native copper in agates from Rudno near Krzeszowice. Mineralogia Polonica 26(1):27–33
  • 17. Manu E, Preko K, Wemegah DD (2013) Application of Ground Penetrating Radar in delineating zones of Gold Mineralization at the Subenso North Concession of Newmont Ghana Gold Limited. Int J Sci Res Publ, 3(5), ISSN 2250–3153; DOI: 10.29322
  • 18. Mierczak M (2019) Attempt to locate agate geodes with GPR in the area of Simota Gully (Lesser Poland Voivodeship) [in Polish]. Dissertation, AGH UST, Faculty of Geology, Geophysics and Environmental Protection
  • 19. Natkaniec-Nowak L, Dumańska-Słowik M, Gaweł A, Łatkiewicz A, Kowalczyk-Szpyt J, Wolska A, Milovská S, Luptáková J, Ładoń K (2020) Fire agate from the Deer Creek deposit (Arizona, USA) – new insights into structure and mineralogy. Mineral Mag 84(2):343–354
  • 20. Patterson JE, Cook FA (2000) Application of complex trace analysis for improved target identification in gem-tourmaline-bearing pegmatites in the Himalaya mine, San Diego County, California. Proc. SPIE 4084, Eighth International Conference on Ground Penetrating Radar, Gold Coast, Australia. https://doi.org/https://doi.org/10.1117/12.383537
  • 21. Patterson JE, Cook FA (2002) Successful Application of Ground Penetrating Radar in the Exploration of Gem Tourmaline Pegmatites of Southern California. Geophys Prospect 50(2):107–117. https://doi.org/10.1046/j.1365-2478.2002.00312.x
  • 22. Plewa M, Plewa S (1992) Petrofizyka, Wydawnictwo Geologiczne
  • 23. Salimi MM (2019) Renfro N (2019) Plume Agate from Iran. Gems & Gemology, Summer 55(2):278
  • 24. Sharma PV (1997) Environmental and engineering geophysics. Cambridge University Press, UK
  • 25. Siedlecki S (1951) Utwory Stefańskie i Permskie we wschodniej części Polskiego Zagłębia Węglowego. Acta Geol Pol 2(3):300–348
  • 26. Smith RJ (2002) Geophysics of iron oxide copper-gold deposits. In: Porter TM (ed) Hydrothermal iron oxide copper-gold and related deposits: a global perspective, vol 2. PGC Publishing, Canada, pp 357–367
  • 27. Szabatin J (2000) Podstawy teorii sygnałów. WKŁ, Warszawa
  • 28. Szulc J, Ćwiżewicz M (1989) The lower permian freshwater carbonates of the Slawkow graben, Southern Poland: Sedimentary facies context and stable isotope study. Paleogeography, Paleoclimatology, Paleoecology no 70:107–120
  • 29. Tomecka-Suchoń S, Marcak H (2015) Interpretation of Ground Penetrating Radar Attributes in identifying the risk of Mining Subsidence. Arch Min Sci 60(2):645–656
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d2caab90-d8f7-4de7-9de6-6cd770dbf328
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