Using Petrogeochemical Modeling to Understand the Relationship between Paleozoic Magmatism in the Kola Region and Its Precambrian History
Abstract
:1. Introduction
2. Geological Setting
- (1)
- Neoarchean (Neoarchean–Paleoproterozoic according to some data): emplacement of the Lapland Granulite and Kolmozero–Voronya belts (Figure 1); and
- (2)
- Paleoproterozoic: emplacement of basic-ultrabasic massifs, such as the Monchetundra and Fedorov–Pana intrusion, as well as the Imandra–Varzuga, Pechenga, and Pana–Kuolayarvi protorifts (Figure 1).
3. Materials and Methods
4. Results
5. Discussion
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Arzamastsev, A.A. Evolution of the Paleozoic Alkaline Magmatism in the Northeastern Baltic Shield. Doctor Thesis, Institute of Precambrian Geology and Geochronology RAS, St Petersburg, Russia, 1998. [Google Scholar]
- Arzamastsev, A.A.; Bea, F.; Glaznev, V.N.; Arzamastseva, L.V.; Montero, P. Kola alkaline province in the Paleozoic: evaluation of primary mantle magma composition and magma generation conditions. Russ. J. Earth Sci. 2001, 3, 304–313. [Google Scholar] [CrossRef]
- Arzamastsev, A.A.; Arzamastseva, L.V.; Belyatsky, B.V. Alkaline volcanism of the initial phase of the Paleozoic tectono-magmatic reactivation in the northeast of Fennoscandia: Geochemistry and petrologic consequences. Petrologiya 1998, 6, 316–336. [Google Scholar]
- Bulakh, A.G.; Ivanikov, V.V.; Orlova, M.P. Overview of Carbonatite-phoscorite Complexes of the Kola Alkaline Province in the Context of a Scandinavian North Atlantic Alkaline Province. Phoscorites and Carbonatites from Mantle to Mine: The Key Example of the Kola Alkaline Province. Wall, F., Zaitsev, A.N., Eds.; Available online: https://books.google.ru/books?hl=ru&lr=&id=y9uGCgAAQBAJ&oi=fnd&pg=PA1&ots=-J3M07-1Mv&sig=cIGJyD_8jVyfZj4pN9r966UO7aU&redir_esc=y#v=onepage&q&f=false (accessed on 17 December 2019).
- Kogarko, L.N.; Konova, V.A.; Orlova, M.P.; Woolley, A.R. Alkaline Rocks and Carbonatites of the World, Part Two, Former USSR; Chapman and Hall: London, UK, 1995. (In Russian) [Google Scholar]
- Kozlov, N.E.; Sorokhtin, N.O.; Glaznev, V.N.; Kozlova, N.E.; Ivanov, A.A.; Kudryashov, N.M.; Martynov, E.V.; Tyuremnov, V.A.; Matyushkin, A.V.; Osipenko, L.G. The Archean Geology of the Baltic Shield; Nauka: St Petersburg, Russia, 2006. (In Russian) [Google Scholar]
- Arzamastsev, A.A.; Ivanyuk, G.Y.; Yakovenchuk, V.N. The Khibina and Lovozero Alkaline Massifs: Geology and Unique mineralization. Available online: https://www.researchgate.net/publication/237730754_The_Khibina_and_Lovozero_alkaline_massifs_Geology_and_unique_mineralization (accessed on 17 December 2019).
- Kramm, U.; Kogarko, L.N.; Kononova, V.A.; Vartiainen, H. The Kola Alkaline Province of the CIS and Finland: Precise Rb-Sr ages define 380–360 age range for all magmatism. Lithos 1993, 30, 33–44. [Google Scholar] [CrossRef]
- Kozlov, N.E. Mineral Composition of Metamorphic Complexes of High-Pressure Granulitic Belts and Issue of Their Protoliths Formation (on Example of the Lapland Granulites). Doctor Thesis, Institute of Precambrian Geology and Geochronology RAS, St Petersburg, Russia, 1995. [Google Scholar]
- Andreeva, E.D.; Kononova, E.V.; Sveshnikova, E.V.; Yashina, R.M. Magmatic rocks. Mosc. Nauka 1984, 2, 415. [Google Scholar]
- Kozlov, N.E.; Sorokhtin, N.O.; Martynov, E.V. Geodynamic Evolution and Metallogeny of Archean Structural and Compositional Complexes in the Northwestern Russian Arctic. Minerals 2018, 8, 573. [Google Scholar] [CrossRef] [Green Version]
- Puri, M.L.; Sen, P.K. Nonparametric Methods in Multivariate Analysis; John Wiley & Sons: New York, NY, USA, 1971. [Google Scholar]
- Tamura, R. Multivariate Nonparametric Several-Sample Tests. Ann. Math. Stat. 1966, 37, 611–618. [Google Scholar] [CrossRef]
- Nelder, J.A.; Mead, R.A. Simplex Method for Function Minimization. Comput. J. 1965, 7, 308–313. [Google Scholar] [CrossRef]
- Kogarko, L.N. Magmatism of Islands of the World Ocean and Heterogeneity of the Earth’s Upper Mantle; Solid Crust of Oceans (Project “Lithos”); Nauka: Moscow, Russia, 1987; pp. 113–121. (In Russian) [Google Scholar]
- Shatsky, A.F. Formation of Carbonates and Mechanism for the Migration of Carbonate Melts through the Earth’s Mantle; Publishing House of the Siberian Branch of the Russian Academy of Sciences: Novosibirsk, Russia, 2015. [Google Scholar]
1 * | 2 | 3 | 4 | 5 | 6 | 7 | 8 | |
1 | −24.0538 | |||||||
2 | 14.2868 ** | −23.4629 | ||||||
3 | 29.8476 | 4.4156 | −23.2626 | |||||
4 | 15.4656 | 3.2608 | 0.0421 | −23.1697 | ||||
5 | 76.8176 | 6.5185 | 0.2001 | 0.3827 | −23.1135 | |||
6 | 32.1595 | 5.1038 | 0.0020 | 0.0027 | 0.3361 | −22.9846 | ||
7 | 20.8434 | 4.9224 | 0.2633 | 0.0120 | 1.0685 | 0.3143 | −22.8459 | |
8 | 15.4354 | 4.4184 | 0.4969 | 0.3188 | 1.6356 | 0.5567 | 0.3773 | −22.6565 |
SiO2 | TiO2 | Al2O3 | Fe2O3 | FeO | MnO | MgO | CaO | Na2O | K2O | |
---|---|---|---|---|---|---|---|---|---|---|
1 * | 49.74 | 1.05 | 15.78 | 2.41 | 8.98 | 1.83 | 7.18 | 10.16 | 2.50 | 0.54 |
2 | 48.49 | 1.37 | 14.56 | 3.66 | 8.70 | 0.20 | 7.17 | 11.83 | 2.42 | 0.50 |
3 | 48.95 | 1.13 | 14.30 | 4.02 | 8.24 | 0.21 | 8.38 | 9.25 | 2.35 | 1.00 |
4 | 48.02 | 1.41 | 14.52 | 3.65 | 10.82 | 0.20 | 7.31 | 10.38 | 2.01 | 0.52 |
5 | 48.89 | 1.16 | 14.40 | 4.07 | 8.83 | 0.22 | 7.32 | 10.64 | 2.43 | 0.62 |
6 | 49.39 | 1.27 | 13.89 | 2.13 | 11.36 | 0.30 | 7.56 | 10.10 | 2.44 | 0.69 |
7 | 48.50 | 1.32 | 14.73 | 6.16 | 6.88 | 0.20 | 6.96 | 10.22 | 2.71 | 0.80 |
8 | 49.10 | 0.65 | 13.11 | 4.00 | 8.23 | 0.18 | 9.82 | 9.56 | 2.50 | 0.95 |
9 | 49.04 | 1.51 | 15.73 | 3.87 | 6.11 | 0.21 | 4.97 | 6.77 | 5.57 | 3.05 |
10 | 49.51 | 1.51 | 19.50 | 3.72 | 2.86 | 0.24 | 1.40 | 3.12 | 9.23 | 6.64 |
11 | 49.56 | 1.21 | 16.29 | 2.90 | 7.52 | 1.27 | 5.91 | 8.46 | 4.09 | 1.92 |
12 | 48.91 | 1.16 | 14.32 | 3.96 | 8.94 | 0.22 | 7.52 | 10.39 | 2.42 | 0.68 |
© 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Kozlov, N.E.; Sorokhtin, N.O.; Martynov, E.V. Using Petrogeochemical Modeling to Understand the Relationship between Paleozoic Magmatism in the Kola Region and Its Precambrian History. Geosciences 2020, 10, 11. https://doi.org/10.3390/geosciences10010011
Kozlov NE, Sorokhtin NO, Martynov EV. Using Petrogeochemical Modeling to Understand the Relationship between Paleozoic Magmatism in the Kola Region and Its Precambrian History. Geosciences. 2020; 10(1):11. https://doi.org/10.3390/geosciences10010011
Chicago/Turabian StyleKozlov, Nikolay E., Nikolay O. Sorokhtin, and Eugeny V. Martynov. 2020. "Using Petrogeochemical Modeling to Understand the Relationship between Paleozoic Magmatism in the Kola Region and Its Precambrian History" Geosciences 10, no. 1: 11. https://doi.org/10.3390/geosciences10010011
APA StyleKozlov, N. E., Sorokhtin, N. O., & Martynov, E. V. (2020). Using Petrogeochemical Modeling to Understand the Relationship between Paleozoic Magmatism in the Kola Region and Its Precambrian History. Geosciences, 10(1), 11. https://doi.org/10.3390/geosciences10010011