On the participation of natural salts in alkaline magmatism. Article 3. Genetic aspects of the model of salt-alkaline interactions
https://doi.org/10.24930/1681-9004-2021-21-2-172-197
Abstract
Research subject. An analysis of regional and global geological material characterizing the spatio-temporal relationships between alkaline magmatic and saline complexes allowed the author to propose and justify a new geological-genetic model of alkaline magmatism. This model considers saline complexes, located along the paths of the upward movement of deep magmas, as additional sources of alkaline and volatile components.
Materials and methods. Three articles are devoted to the discussion and justification of this model. Two articles were devoted to geological aspects of the problem. The prerequisites and signs of the participation of ancient saline complexes in alkaline magmatism were characterized. It was shown that the presence of saline rocks in the deep zones of the earth's crust along the paths of the upward movement of deep magma flows is a geologically natural and common phenomenon. Natural alkaline-salt associations (spatio-temporal combinations of alkaline and salt objects) were indicated; their tectonic types were distinguished. A global overview of their different-age analogues (neo- and paleogeodynamic) was given.
Results and discussion. The collected data made it possible to evaluate older (than magmas) salt-bearing complexes (deeply buried in the substrate) as a possible important and active participant in the ontogenesis of alkaline complexes, to give a positive assessment of the geological aspects of the “magma halocontamination” model and salt-magmatic interactions; to formulate the main geological-genetic provisions of this model.
Conclusion. This article focuses on the discussion of the genetic aspects of the proposed model with an assessment of the probable role and significance of various halophilic components in the formation of alkaline magmas and their features. For this purpose, the similarity features in the spatial and quantitative distribution of halophilic and foydaphilic components in salt and alkaline rocks are considered; the probable role of various halophilic components in the formation of alkaline specialization of magmas, in the emergence of a rich set of unusual features of alkaline rocks (material, structural, morphological, etc.) is discussed. The probability of participation of the complex of paragenic (non-salt) members of the halophilic community (dolomites, anhydrites, black shales and associated ore components) in the interaction with hot magma is estimated. A comparative analysis of some basic provisions of the model under consideration with other geological-genetic models of alkaline petrogenesis is performed. The advantages of this model and its predictive capabilities are evaluated. A number of ideas have been proposed by the author for the first time, thus requiring further elucidation.
Keywords
About the Author
G. A. BelenitskayaRussian Federation
Galina A. Belenitskaya
74 Srednii av., St.Petersburg 199106
References
1. Aiuppa A., Baker D.R., Webster J. (Guest Editor). (2009) Halogenes in Volcanic Systems and Their Environmental Impacts. Special Issue. Chem. Geol., 263(1-4), 163 p.
2. Alkaline rocks. (1976) Ed. H. Serensen. Moscow, Mir Publ., 400 p. (In Russian)
3. Anfilogov V.N. (2006) Problems of basaltic magmatism and the genesis of alkaline rocks. Abstracts of the All-Russian Seminar “Geochemistry of Igneous Rocks”. School “Alkaline Magmatism of the Earth”. http://geo.web.ru/conf/alkaline/2006/index69.html (In Russian)
4. Antsiferov A.S. (1989) Hydrogeology of the oldest oil and gas bearing strata of the Siberian Platform. Moscow, Nedra Publ., 176 p. (In Russian)
5. Belenitskaya G.A. (1998) Halogen-bearing basins. Litho-geodynamics and minerogenetic of sedimentary basins. (Ed. A.D. Shcheglov). St.Petersburg, VSEGEI Publ., 220-320. (In Russian)
6. Belenitskaya G.A. (2018) Salt systems of the earth: distribution, tectonic and kinematic history, salt-naphthids interrelations, discharge foci, recycling. USA,Wiley, 714 p.
7. Belenitskaya G.A. (2018) On the participation of natural salts in alkaline magmatism. Article 1. Natural salt-alkaline associations. Litosfera, 18(2), 153-176. DOI: 10.24930/1681-9004-2018-18-2-153-176 (In Russian)
8. Belenitskaya G.A. (2019) On the participation of natural salts in alkaline magmatism. Article 2. Reference objects. Geological aspects of the model. Litosfera, 19(4), 499-518. DOI: 10.24930/1681-9004-2019-19-4-499-518 (In Russian)
9. Belenitskaya G.A. (2020) Salts of the earth. Tectonic, kinematic and magmatic aspects of geological history. Moscow, GEOS Publ., 606 p. (In Russian)
10. Betekhtin A.G. (1956) The course of mineralogy. Moscow, Gosgeoltekhizdat Publ., 558 p. (In Russian)
11. Bogatikov O.A., Ryabchikov I.D., Kononova V.A. (1991) Lamproites. Moscow, Nauka Publ., 301 p. (In Russian)
12. Borodin L.S. (1994) Genetic types and geochemical features of mantle-crustal carbonatite formations. Geokhimiya, (12), 1683-1692. (In Russian)
13. Carbonatites. (1969) Eds O. Tuttle and J. Gittins. Moscow, Mir Publ., 487 p. (In Russian)
14. Carbonatites and kimberlites (relationships, minerageny, forecast). (2005) A.A. Frolov, A.V. Lapin, A.V. Tolstov, N.N. Zinchuk, S.V. Belov, A.A. Burmistrov. Moscow, NIA-Priroda Publ., 540 p. (In Russian)
15. Chevychelov V.Yu., Bocharnikov R.E., Khol'tts F. (2008) Experimental study of the distribution of chlorine and fluorine between fluid and subalkaline basaltic melt. Dokl. Akad. Nauk, 422(1), 93-97. (In Russian)
16. East African Rift System. (1974) Moscow, Nauka Publ., 3, 314 p. (In Russian)
17. Frolov A.A., Tolstov A.V., Belov S.V. (2003) Carbonatite deposits of Russia. Moscow, NIA-Priroda Publ., 494 p. (In Russian)
18. Fundamentals of hydrogeology. Hydrogeochemistry. (1982) S.L. Shvartsev, E.V. Pinneker, A.I. Perel'man, V.I. Kononov, A.D. Nazarov, N.M. Rasskazov, P.A. Udodov, V.M. Shvet. Novosibirsk, Nauka Publ., 287 p. (In Russian)
19. Geological Dictionary. (2010-2012) In 3 vol. St.Petersburg, VSEGEI Publishing House. (In Russian)
20. Grishina S.N., Polozov A.G., Mazurov M.P., Goryainov S.V. (2014) Genesis of chloride-carbonate formations of the Udachnaya-Vostochnaya pipe. Dokl. Akad. Nauk, 458(2), 198-200. (In Russian)
21. Khodorevskaya L.I., Varlamov D.A. (2016) Experimental study of amphibole's interaction with NaCl-KCl-H2O fluids: applications to high-temperature alkaline metasomatism of basic rocks. Exper. GeoSci., 22(1), 31-32.
22. Khofmann A.W. (1997) Mantle geochemistry: the message from oceanic volcanism. Nature, 385, 219-229.
23. Kholodnov V.V., Bushlyakov I.N. (2002) Halogens in endogenous ore formation. Ekaterinburg, UB RAS, 392 p. (In Russian)
24. Khomyakov A.P. (1990) Mineralogy of ultra-agpaite alkaline rocks. Moscow, Nauka Publ., 196 p. (In Russian)
25. Khomyakov A.P. (2004) Minerals-endemic as products of geocatalysis and indicators of the formation of industrial superconcentrations of metals in the lithosphere. Mineralogy in the whole space of this word. St.Petersburg, St.Petersburg State University Publ., 234-235. (In Russian)
26. Khomyakov A.P. (2007) Ultraagpaitic rocks of the Khibiny-Lovozero complex as an inexhaustible source of minerals with unique properties. Tr. All-Russian scientific conf. and IV Fersman scientific. session. Apatity, K & M Publ., 202-205. (In Russian)
27. Kogarko L.N. (1977) Problems of agpaitic magma genesis. Moscow, Nauka Publ., 294 p. (In Russian)
28. Kogarko L.N., Ryabchikov I.D. (1978) Volatile components in magmatic processes. Geokhimiya, (9), 1293-1321. (In Russian)
29. Lazarenkov V.G. (1988) Formation analysis of alkaline rocks of continents and oceans. Leningrad, Nedra Publ., 236 p. (In Russian)
30. Major provinces and formations of alkaline rocks. (1974) (Ch. ed. L.S. Borodin). Moscow, Nauka Publ., 376 p. (In Russian)
31. Marakushev A.A., Suk N.I. (1996) Experimental modeling of the ore content of nepheline-syenite intrusions. Dokl. Akad. Nauk, 347(1), 90-94. (In Russian)
32. Marakushev A.A., Suk N.I., Novikov M.P. (1997) Chloride extraction of metals and the problem of their migration from magma chambers. Dokl. Akad. Nauk, 352(1), 8386. (In Russian)
33. Mazurov M.P., Grishina S.N., Istomin V.E., Titov A.T. (2007) Metasomatism and ore formation at the contacts of dolerites with salt-bearing sediments of the southern Siberian platform cover. Geol. Rudn. Mestorozhd., 49(4), 306-320. (In Russian)
34. Moore D.C. (2010) Pioneering the global subsalt-presalt play: The World beyond Mahogany Field. Search and Discovery. Article #10285.
35. Pavlov D.I. (1975) Magnetite ore formation with participation of exogenous chloride waters. Moscow, Nauka Publ., 246 p. (In Russian)
36. Pavlov D.I., Ryabchikov I.D. (1968) Dolerites solidified in a salt mass. Izv. AN SSSR, Ser. Geol., (2), 52-63. (In Russian)
37. Pekov I.V. (2006) Ultra-alkaline vein hydrothermalites in the rocks of the ore-bearing layered complex of the Lovozero massif, Kola Peninsula: mineralogy and formation mechanism. Mineralogy in the whole space of this word. Apatity, 132-135. (In Russian)
38. Petrographic code of Russia. Magmatic, metamorphic, metasomatic, impact rocks. (2009) 3-rd ed. St.Petersburg, Publishing house VSEGEI, 200 p. (In Russian)
39. Pil'tenko M.K. (1964) On the possibility of the formation of alkaline rocks by palingenesis of supercrustalline salt-bearing strata. The origin of alkaline rocks. Tr. 3rd All-Union. petrogaf. Meeting. Moscow, Nauka Publ., 117-128. (In Russian)
40. Pokrovskii B.G. (2000) Crustal contamination of mantle magmas on evidence of isotope geochemistry. Moscow, Nauka Publ., 225 p. (In Russian)
41. Puchkov V.N. (2005) Vesuvius and others. Samizdat. http://samlib.ru/p/puchkow_w_n/vezuviyiokrestnosti.shtml Accessed 12.12.2015 (In Russian)
42. Purtov V.K., Anfilogov V.N., Egorova L.G. (2002) Interaction of basalt with chloride solutions and the mechanism of formation of acidic melts. Geokhimiya, (10), 1084-1097. (In Russian)
43. Reef, saline and black shale formations of Russia. (2015) (Ch. eds G.A. Belenitskaya, O.V. Petrov, N.N. Sobolev). St.Petersburg, Publishing house VSEGEI, 624 p. (In Russian)
44. Reefogenic and sulfatebearing formations of the Phanerozoic of the USSR. (1990) (Ch. eds G.A. Belenitskaya, N.M. Zadorozhnaya). Moscow, Nedra Publ., 291 p. (In Russian)
45. Ritmann A. (1964) Volcanoes and their activity. Moscow, Mir Publ., 438 p. (In Russian)
46. Ryabchikov I.D., Khamilton D.L. (1971) On the possibility of separating of concentrated chloride solutions during crystallization of acid magmas. Dokl. Akad. Nauk SSSR., 197(4), 933-936. (In Russian)
47. Safonov O.G., Butvina V.G. (2013) Interaction of model pe-ridotite with H2O-KCl fluid: experiment at 1.9 GPA and its implications for upper mantle metasomatism. Petrology, 21(6), 599-615.
48. Safonov O.G., Perchuk L.L., Litvin Yu.A. (2007) Interaction of diopside and jadeite with potassium chloride at a pressure of 5 GPa. Dokl. Akad. Nauk, 415(1), 105-109. (In Russian)
49. Semenov E.I. (2007) Metallization and mineralization of alkaline rocks. Moscow, Geokart, GEOS Publ., 196 p. (In Russian)
50. Serdyuchenko D.P. (1972) Saline sedimentary rocks in the Precambrian earth strata and their scapolite-bearing metamorphic derivatives. Geology Precambrian. Lenin-grad, Nauka Publ., 31-41. (In Russian)
51. Solov'ev S.P. (1970) Chemistry of igneous rocks and some issues of petrochemistry. Leningrad, Nauka Publ., 312 p. (In Russian)
52. Systematics and classification of sedimentary rocks and their analogues. (1998) V.N. Shvanov, V.T. Frolov, E.I. Sergeeva, V.I. Dragunv, D.K. Patrunov, V.G. Kuznetsov, U.A. Belenitskaya, V.V. Zhdanov, I.B. Volkova. St.Petersburg, Nedra Publ., 352 p. (In Russian)
53. Ziegler P.A., Horvath F. (ed.). (1996) Peri-Tethys Memoir 2: Structure and Prospects of Alpine Basins and Forelands. Mem. Mus. Natn. Hist. Nat. Paris, 170. 511 p.
Review
For citations:
Belenitskaya G.A. On the participation of natural salts in alkaline magmatism. Article 3. Genetic aspects of the model of salt-alkaline interactions. LITHOSPHERE (Russia). 2021;21(2):172-197. (In Russ.) https://doi.org/10.24930/1681-9004-2021-21-2-172-197