Preview

LITHOSPHERE (Russia)

Advanced search

Heterogeneous nature of the ultrabasic-basic association of the Kurtushiba Range (Western Sayan, Russia): Vendian ophiolites and Ordovician gabbroids

https://doi.org/10.24930/2500-302X-2026-26-3-565-583

EDN: ADPJGQ

Abstract

   Research subject. The ultramafic-mafic association of the Kurtushiba Range (the Altai–Sayan Segment of the Central Asian Mobile Belt), conventionally regarded as a single ophiolitic association composed of dunites, harzburgites, pyroxenites, gabbroic rocks, diabases, and basalts.

   Aim. To demonstrate the heterogeneous nature of this association, to substantiate the distinction of independent Ordovician “late” gabbroids that were previously included in the ophiolite assemblage, as well as to clarify their role in the overall scheme of Caledonian magmatism in the Western Sayan.

   Materials and methods. Field observations and rock sampling, petrographic study, whole-rock petrogeochemical analysis, Sm–Nd isotope geochemistry, and amphibole 40Ar/39Ar geochronology; comparison of the data obtained with those published on the Kurtushibinsky ophiolites and gabbroic rocks from adjacent areas.

   Results. The ultramafic-mafic association of the Kurtushibinsky Range was shown to comprise two complexes of different ages: Vendian suprasubduction-zone ophiolites and Ordovician syn-collisional gabbroids (amphibole 40Ar/39Ar age of 487 ± 7 Ma for the Verkhneozhinsky massif) that intruded the ophiolites and are accompanied by narrow near-contact zones of serpentinite polymict mélanges. The “late” gabbroids are characterized by an N-MORB-like geochemical affinity and display two levels of REE depletion (ΣREE = 2.9–7.1 and 24–44 ppm) with εNd(T) values of +6.8 and +8.7, respectively, indicating a juvenile DMM source with no significant subduction-related component.

   Conclusions. The ultramafic-mafic association of the Kurtushibinsky Range is heterogeneous. Thus, Vendian ophiolites are associated with Ordovician gabbroic intrusions formed by renewed partial melting of depleted mantle during the collisional stage of Caledonian evolution in the Western Sayan, most likely in a setting of syn-collisional transtensional deformation. Recognition of the “late” gabbroids as distinct from the ophiolite assemblage refines the accepted model of Caledonian magmatic evolution of the region and may provide a basis for revising other ultramafic-mafic associations conventionally regarded as exclusively ophiolitic.

About the Authors

A. A. Mongush
Tuvinian Institute for Exploration of Natural Resources, SB RAS
Russian Federation

Andrey A. Mongush

667007; 117a Internatsionalnaya st.; Kyzyl



A. I. Chernyshov
National Research Tomsk State University
Russian Federation

Alexey I. Chernyshov

634050; 36 Lenin av.; Tomsk



F. P. Lesnov
V.S. Sobolev Institute of Geology and Mineralogy, SB RAS
Russian Federation

Felix P. Lesnov

630090; 3 Academician Koptyug av.; Novosibirsk



Ch. K. Oydup
Tuvinian Institute for Exploration of Natural Resources, SB RAS
Russian Federation

Choyganmaa K. Oydup

667007; 117a Internatsionalnaya st.; Kyzyl



Ch. O. Kadyr-ool
Tuvinian Institute for Exploration of Natural Resources, SB RAS
Russian Federation

Chayana O. Kadyr-ool

667007; 117a Internatsionalnaya st.; Kyzyl



E. K. Druzhkova
Tuvinian Institute for Exploration of Natural Resources, SB RAS
Russian Federation

Evgenia K. Druzhkova

667007; 117a Internatsionalnaya st.; Kyzyl



A. V. Vorobyeva
National Research Tomsk State University
Russian Federation

Anastasia V. Vorobyeva

634050; 36 Lenin av.; Tomsk



References

1. Agrawal S., Guevara М., Verma S.P. (2008) Tectonic discrimination of basic and ultrabasic volcanic rocks through log-transformed ratios of immobile trace elements. Int. Geol. Rev., 50(12), 1057-1079.

2. Ague J.J. (2017) Element mobility during regional metamorphism in crustal and subduction zone environments with a focus on the rare earth elements (REE). Amer. Miner., 102(9), 1796-1821. doi: 10.2138/am-2017-6130

3. Avdeiko G.P., Bergal-Kuvikas O.V. (2015) The geodynamic conditions for the generation of adakites and Nb-rich basalts (NEAB)) in Kamchatka. J. Volcanology Seismology, 9(5), 295-306 (translated from Vulkanologiya i Seismologiya, (5), 9-22). doi: 10.1134/S0742046315050024

4. Babin G.A., Pakhalko A.G., Soboleva A.A., Tsybulskaya A.E., Kutyreva M.E., Oleinikova G.A., Khubanov V.B., Sergeev S.A. (2024) Program of systematic isotope geochemical and geochronological studies of geological complexes in Russia: Methods and first results of 2022-2024. Regionalnaya Geologiya i Metallogeniya, 31(4), 59-72. (In Russ.) doi: 10.52349/0869-7892_2024_100_59-72

5. Bayanova T.B. (2004) The age of the reference geological complexes of the Kola region and the duration of magmatism processes. St. Petersburg, Nauka Publ., 174 p.

6. Berzin N.A., Kungurtsev L.V. (1996) Geodynamic interpretation of geological complexes of the Altai-Sayan region. Geol. Geofiz., 37(1), 63-81. (In Russ.)

7. Borodina E.V., Egorova V.V., Izokh A.E. (2004) Petrology of ordovician collision-related layered peridotite-gabbro intrusions (exemplified by the Mazhalyk intrusion, South-eastern Tuva). Geol. Geofiz., 45(9), 1074-1091. (In Russ.)

8. Borodina E.V., Izokh A.E., Mongush A.A. (2011) The Bulka peridotite-gabbro intrusion (West Sayan), a syncollisional type of layered intrusions. Russ. Geol. Geophys., 52(3), 307-319 (translated from Geol. Geofiz., 52(3), 393- 408). doi: 10.1016/j.rgg.2011.02.004

9. Borodina E.V., Izokh A.E., Mongush A.A. (2016) Comparison of petrology and isotope geochemistry of the Bulka peridotite-gabbro massif and granitoids of the Kyzykchadra complex (West Sayan). Geochem. Int., 54(4), 321- 345 (translated from Geokhimiya, (4), 344-370). doi: 10.1134/S0016702916040029

10. Cabanis B., Thiéblemont D. (1988) La discrimination des tholeiites continentales et des basaltes arriere-arc; proposition d’un nouveau diagramme, le triangle Th-3xTb-2xTa. Bull. Societe Geologique de France, 8(6), 927-935. doi: 10.2113/gssgfbull.IV.6.927

11. Chernyshov A.I., Vorob’eva A.V., Yurichev A.N. (2020) Petrology of the Kyzyr-Burlyuk mafic-ultramafic massif (Northeastern Western Sayan). Izv. Tomskogo politekhn. un-ta. Inzhiniring georesursov, 331(8), 199-207. (In Russ.) doi: 10.18799/24131830/2020/8/2781

12. Chernyshov A.I., Yurichev A.N., Kicheeva A.V. (2019) Petrogeochemical features of chromite-bearing ultramafic rocks of the Kurtushibin ophiolite belt (Western Sayan). Lithosphere (Russia), 19(5), 687-703. (In Russ.) doi: 10.24930/1681-9004-2019-19-5-687-703

13. Condie K.C. (2005) High field strength element ratios in Archean basalts: A window to evolving sources of mantle plumes? Lithos, 79, 491-504. doi: 10.1016/j.lithos.2004.09.014

14. Condie K.C., Stem R.J. (2023) Ophiolites: Identification and tectonic significance in space and time. Geosci. Front., 14(6), 101680. doi: 10.1016/j.gsf.2023.101680

15. Dobretsov N.L., Ponomareva L.G. (1976) Ophiolites and associated glaucophane schists of the Kurtushibin Range. Geol. Geofiz., (2), 40-53. (In Russ.)

16. Dyatlova L.N., Bublik A.I., Sharifulin S.K. (2023) Nephrite deposits of the Western Sayan. Prirodnye Resursy, Sreda i Obshchestvo, (2), 14-33. (In Russ.)

17. Furnes H., Safonova I. (2019) Ophiolites of the Central Asian Orogenic Belt: Geochemical and petrological characterization and tectonic settings. Geosci. Front., 10(4), 1255- 1284. doi: 10.1016/j.gsf.2018.12.007

18. Geological Code of Russia. Magmatic, metamorphic, metasomatic and impact formations. (2008) (Ed. by O.A. Bogatikov, O.V. Petrov). St. Petersburg, VSEGEI, 203 p. (In Russ.)

19. Geological map of the USSR, scale 1:200 000. (1965) Western Sayan Series, sheet N-46-XXXIV. Moscow, Nedra Publ. (In Russ.)

20. Hirschmann M.M. (2000) Mantle solidus: Experimental constraints and the effects of peridotite composition. Geochemistry, Geophysics, Geosystems, 1(10). doi: 10.1029/2000GC000070

21. Katz R.F., Spiegelman M., Langmuir C.H. (2003) A new parameterization of hydrous mantle melting. Geochemistry, Geophysics, Geosystems, 4(9), 1073. doi: 10.1029/2002GC000433

22. Kheraskov N.N. (1975) Formations and stages of geosynclinal evolution of the Western Sayan. Geotektonika, (1), 35-53. (In Russ.)

23. Khromykh S.V., Izokh A.E., Gurova A.V., Cherdantseva M.V., Savinsky I.A., Vishnevsky A.V. (2019) Syncollisional gabbro in the Irtysh shear zone, Eastern Kazakhstan: Compositions, geochronology, and geodynamic implications. Lithos, 346-347. doi: 10.1016/j.lithos.2019.07.011

24. Kurenkov S.A., Didenko A.N., Simonov V.A. (2002) Geodynamics of paleo-spreading. Moscow, GEOS Publ., 294 p. (In Russ.)

25. Kuzhuget K.S., Oydup Ch.K. (1987) Some features of relationships between basic and ultrabasic rocks of the Kyzyr-Burlyuksky massif (Western Sayan). Ultramafic associations of folded regions. Novosibirsk, IGiG SO AN SSSR, 95-104. (In Russ.)

26. Lesnov F.P. (1984) Petrology of polygenetic basic-ultrabasic plutons in fold belts. Izv. AN SSSR. Ser. Geol., (2), 71- 78. (In Russ.)

27. Lesnov F.P. (1988) Petrology of polygenetic basic-ultrabasic plutons in fold regions. Doct. geol. and min. sci. diss. Novosibirsk, IGM SB RAS, 564 p. (In Russ.)

28. Lesnov F.P. (2018) Spatial-temporal relationships between ultramafic and gabbroic rocks in the Idzhim mafic-ultramafic massif (Western Sayan). Petrologiya Magmaticheskikh i Metamorficheskikh Kompleksov, vyp. 10. Tomsk, Tomsk TsNTI, 230-233. (In Russ.)

29. Lesnov F.P., Kuzhuget K.S., Mongush A.A., Oydup Ch.K. (2019) Geology, petrology and ore potential of mafic-ultramafic massifs of the Republic of Tyva. Novosibirsk, GEO Publ., 350 p. (In Russ.)

30. Lesnov F.P., Mongush A.A., Oydup Ch.K., Popov V.A. (2005) Structural and genetic relationships between ultramafic and gabbroic rocks in the Kurtushibin ophiolite association (Western Sayan). Ultramafic-mafic complexes of folded Precambrian regions. Proc. Int. Conf. Ulan-Ude, BNTs SO RAN, 59-61. (In Russ.)

31. Mongush A.A. (2019) Geological setting, geochemical and Sm-Nd isotopic composition of ophiolites in the Sayano-Tuva fore-arc zone. Izv. Irkutskogo gos. un-ta. Ser.: Nauki o Zemle, 30, 56-75. doi: 10.26516/2073-3402.2019.30.56

32. Mongush A.A., Olschewski P. (2024) A new look at the geodynamic development of the Ediacaran-early Cambrian forearc basalts of the Tannuola-Khamsara Island Arc (Central Asia, Russia): Conclusions from geological, geochemical, and Nd-isotope data. Open Geosci., 16, 20220586. doi: 10.1515/geo-2022-0586

33. Mongush A.A., Gusev N.I., Oydup Ch.K., Kadyr-ool Ch.O., Hertek Ch.M., Lesnov F.P., Druzhkova E.K. (2025) Age and Geodynamic Position of Ophiolites of Kurtushiba Ridge of Western Sayan. Dokl. Earth Sci., 520(1), 1-7 (translated from Dokl. RAN. Nauki о Zemle, 520(2), 5-12). doi: 10.1134/S1028334X24604620

34. Mongush A.A., Gusev N.I., Prudnikov S.G., Khertek Ch.M., Druzhkova E.K. (2022) Composition and age of the Izinzyul gabbro-diorite-pl agiogranite complex (Kurtushiba fore-arc subzone, Western Sayan). Geodynamic evolution of the lithosphere of the Central Asian Thrust Belt (from ocean to continent). Conf Proc., iss. 20. Irkutsk, Institut Zemnoi Kory SO RAN, 208-210. (In Russ.)

35. Mongush A.A., Lesnov F.P., Oydup Ch.K., Khertek Ch.M., Kadyr-ool Ch.O., Druzhkova E.K. (2026) U-Pb age and geochemistry of zircon from tuffaceous sandstone of the Koyard River (Kurtushiba Range, Western Sayan): evidence for an Ordovician syncollisional sequence. Geologiya i Mineral’nye Resursy Sibiri, 26(1), 89-102. doi: 10.20403/2078-0575-2026-1-89-101

36. Nakamura K. (2023) Practical applications and limitations of basalt discrimination diagrams. Big Earth Data, 7(4), 1081-1093. doi: 10.1080/20964471.2023.2235731

37. Pearce J.A. (2008) Geochemical fingerprinting of oceanic basalts with applications to ophiolite classification and the search for Archean oceanic crust. Lithos, 100(1-4), 14-48. doi: 10.1016/j.lithos.2007.06.016

38. Pinus G.V. (1974) Relationships between gabbroids and hyperbasites in ophiolite series. Geol. Geofiz., (5), 139-143. (In Russ.)

39. Pinus G.V., Agafonov L.V., Lesnov F.P. (1979) Relationships between members of ophiolite associations of the Central Asian fold belt. Geol. Geofiz., (11), 10-20. (In Russ.)

40. Popov V.A., Mitus A.I., Nechaeva S.P. (2003) State geological map of the Russian Federation, scale 1:200 000. 2<sup>nd</sup> ed. Western Sayan Series, sheet N-46-XXIX (Verkhniy Amyl). St. Petersburg, VSEGEI. (In Russ.)

41. Rudnev S.N., Babin G.A., Semenova D.V., Travin A.V. (2024) Evolution of intrusive magmatism in the Western Sayan. Russ. Geol. Geophys., 65(10), 1161-1176 (translated from Geol. Geofiz., 65(10), 1366-1384). doi: 10.2113/RGG20244704

42. Saccani E. (2015) A new method of discriminating different types of post-Archean ophiolitic basalts and their tectonic significance using Th-Nb and Ce-Dy-Yb systematics. Geosci. Front., 6(4), 481-501. doi: 10.1016/j.gsf.2014.03.006

43. Saccani E., Principi G. (2016) Petrological and tectonomagmatic significance of ophiolitic basalts from the Elba Island within the Alpine Corsica-Northern Apennine system. Mineral. Petrol., 110, 713-730. doi: 10.1007/s00710-016-0445-3

44. Sal’nikova E.B., Kovach V.P., Kozakov I.K., Yakovleva S.Z., Fedoseenko A.M., Oidup Ch.K., Mongush A.A. (2004) Age and geodynamic setting of the Mazhalyk peridotite-pyroxenite- anorthosite-gabbro complex, Eastern Tuva. Petrology, 12(6), 583-588 (translated from Petrologiya, 12(6), 656-662).

45. Saunders A.D., Norry M.J., Tarney J. (1988) Origin of MORB and chemically depleted mantle reservoirs: trace element constraints. J. Petrol., (Special Lithosphere Issue), 415-445.

46. Semenov M.I., Kachevskiy L.K., Kolyamkin V.M., Krotova T.A., Alyasev V.A., Aleksandrovskiy Yu.S., Fedorenko O.N. (2019b) State geological map of the Russian Federation, scale 1:200 000. 2<sup>nd</sup> ed. Western Sayan Series, sheet N-46-XXXV (Uyuk). Explanatory note. Moscow, VSEGEI. (In Russ.)

47. Semenov M.I., Zorina A.N., Kolyamkin V.M., Kachevskiy L.K., Krotova T.A., Aleksandrovskiy Yu.S. (2019a) State geological map of the Russian Federation, scale 1:200 000. Second edition. Western Sayan Series, sheet N-46-XXXIV (Turan). Explanatory note. St. Petersburg, VSEGEI, 188 p. (In Russ.)

48. Sharpenok L.N., Kostin A.E., Kukharenko E.A. (2013) TAS diagram (total alkalis-silica) for chemical classification and diagnostics of plutonic rocks. Regionalnaya Geologiya i Metallogeniya, 56, 40-50. (In Russ.)

49. Sibilev A.K. (1980) Petrology and asbestos potential of ophiolites (example of the Idzhim massif in the Western Sayan). Novosibirsk, Nauka Publ., 213 p. (In Russ.)

50. Simonov V.A., Chernishov A.I., Kotlyarov A.V. (2022) Mineralogy and genesis of ultrabasic rocks of the Kurtushibin ophiolite belt (Western Sayan). Mineralogiya, 8(2), 49-62. (In Russ.) doi: 10.35597/2313-545X-2021-8-2-5

51. Simonov V.A., Kotlyarov A.V., Kulikova A.V. (2024) Conditions of formation of paleo- oceanic complexes of the Altai-Sayan fold area. Novosibirsk, SO RAN, 309 p. (In Russ.)

52. Song S.G., Wang M.J., Wang C., Niu Y.L. (2015) Magmatism during continental collision, subduction, exhumation and mountain collapse in collisional orogenic belts and continental net growth: A perspective. science China Earth Sciences, 58, 1284-1304. doi: 10.1007/s11430-015-5102-x

53. Sun S.S., McDonough W.F. (1989) Chemical and isotopic systematics of oceanic basalts: Implications for mantle composition and processes. Magmatism in the Ocean Basins. (Ed. by A.D. Saunders, M.J. Norry). Geological Society, London, Spec. Publ., 42, 313-346.

54. Velinsky V.V., Pavlov A.L., Bishaeva L.G. (1999) Contact-reaction interaction between gabbro and hyperbasite in ophiolite sections dominated by gabbroic rocks. Problems of petrology, mineralogy, geochemistry and geology of ophiolites. Novosibirsk, SO RAN, 85-94. (In Russ.)

55. Volkova N.I., Travin A.V., Yudin D.S. (2011) Ordovician blueschist metamorphism as a reflection of accretion-collision events in the Central Asian orogenic belt. Russ. Geol. Geophys., 52(1), 72-84 (translated from Geol. Geofiz., 52(1), 91-106). doi: 10.1016/j.rgg.2010.12.006

56. Volkova N.I., Stupakov S.I., Babin G.A., Rudnev S.N., Mongush A.A. (2009) Mobility of Trace Elements during Subduction Metamorphism as Exemplified by the Blueschists of the Kurtushibinsky Range, Western Sayan. Geochem. Int., 47(4), 380-392 (translated from Geokhimiya, 47(4), 401-414). doi: 10.1134/S0016702909040053

57. Wei B., Wang C.Y., Li P. (2024) Syn-collisional extension and Ni-Cu sulfide-bearing mafic magma emplacement along the Irtysh Shear Zone in the Central Asian Orogenic Belt. GSA Bull., 136(1-2), 403-417. doi: 10.1130/B36759.1

58. Workman R.K., Hart S.R. (2005) Major and trace element composition of the depleted MORB mantle (DMM). Earth Planetary Sci. Lett., 231, 53-72. doi: 10.1016/j.epsl.2004.12.005


Review

For citations:


Mongush A.A., Chernyshov A.I., Lesnov F.P., Oydup Ch.K., Kadyr-ool Ch.O., Druzhkova E.K., Vorobyeva A.V. Heterogeneous nature of the ultrabasic-basic association of the Kurtushiba Range (Western Sayan, Russia): Vendian ophiolites and Ordovician gabbroids. Special Issue of the Lithosphere Journal based on the materials reported at the IX All-Russian Conference with international participation “Mafic-ultramafic complexes: geology, petrology, ore potential”. 2026;26(3):565-583. (In Russ.) https://doi.org/10.24930/2500-302X-2026-26-3-565-583. EDN: ADPJGQ

Views: 249

JATS XML


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 1681-9004 (Print)
ISSN 2500-302X (Online)
X