Late Pennsylvanian vegetation dynamics of the Donets Basin,
Ukraine
Nataliya Boyarina https://orcid.org/0000-0001-5316-4090
Institute of Geological Sciences, NAS of Ukraine (Kyiv, Ukraine)
Cite
as
Boyarina, N. 2024. Late Pennsylvanian vegetation dynamics of the Donets
Basin, Ukraine. GEO&BIO, 26: 45-78. [English, with
Ukrainian summary]
doi: https://doi.org/10.53452/gb2605
pdf: gb2605-boyarina.pdf
Abstract
The dynamics
of the Late Pennsylvanian vegetation cover of the Donets Basin is represented by a
succession of formations of new plant communities (phytocoenogenesis) of a wetland
forest and woodland biome and a seasonally dry woodland biome because of the changing
landscape and climate conditions resulting from the glacio-eustatic changes during the Late
Paleozoic Ice Age. The Late Pennsylvanian vegetation consisted of plant communities of
wetland marattialean fern-dominated forests on coastal lowlands and wetland lycopsid-fern
forests on deltaic plains in the Kasimovian as well as wetland marattialean fern-dominated
forests with new dominants on coastal lowlands and wetland
lycopsid-pteridosperm-calamitalean-fern forests with new dominants on deltaic plains in the
early Gzhelian that were formed according to the evolutionary progressive model of
phytocoenogenesis under conditions of an expansion of coastal lowlands and deltaic plains
inthe long-term period of a relatively stable higher sea level with frequent sea level
fluctuations during the late Kasimovian–early-mid-Gzhelian interglacial interval. The
subsequent transformation of wetland forests to wetland woodlands on coastal lowlands and
deltaic plains according to the substitutionary regressive model of phytocoenogenesis and
the formation of the new seasonally dry peltaspermalen pteridosperm-dominated woodland
communities in river valleys according to the evolutionary progressive model of
phytocoenogenesis took place against the background of a reduction of coastal lowlands and
an expansion of river landscapes in the long-term period of a relatively stable sea level
drop during the early phase of the late Gzhelian glacial interval. The new plant communities
of wetland calamitalean-fern-pteridosperm woodlands on coastal lowlands and seasonally dry
fern-pteridosperm woodlands on lagoon coasts in the late Gzhelian were formed according to
the migration progressive model of phytocoenogenesis due to a migration of plants from
reduced river landscapes to coastal lowlands and lagoon coasts in the period of the further
sea level drop with low-amplitude sea level oscillations and an increased drying during the
continued late Gzhelian glacial interval.
Key
word: Vegetation changes, phytocoenogenesis, glacioeustasy, Kasimovian, Gzhelian,
Donets Basin.
Correspondence to
Nataliya
Boyarina; Institute of Geological Sciences, NAS of Ukraine; 55-b Oles Honchar Street, Kyiv,
01054 Ukraine; Email: nboyarina@ukr.net
Article
info
Submitted: 15.10.2024. Revised: 01.11.2024. Accepted: 30.12.2024.
References
Bashforth, A. R., C. J. Cleal, M. R. Gibling,
H. R. Falcon-Lang, R. F. Miller. 2014. Paleoecology of Early
Pennsylvanian vegetation on a seasonally dry tropical landscape (Tynemouth Creek Formation,
New Brunswick, Canada). Review of Palaeobotany and Palynology, 200:
229–263. https://doi.org/10.1016/j.revpalbo.2013.09.006
Bashforth, A. R.,
W. A. DiMichele, C. F. Eble, W. J. Nelson. 2016. Dryland
vegetation from the Middle Pennsylvanian of Indiana (Illinois Basin): the dryland biome in
glacioeustatic, paleobiogeographic, and paleoecologic context. Journal of
Paleontology, 90 (5): 785–814. https://doi.org/10.1017/jpa.2016.25
Bashforth, A. R.,
W. A. DiMichele, C. F. Eble, H. J. Falcon-Lang, C. V. Looy,
S. G. Lucas. 2021. The environmental implications of upper Paleozoic plant-fossil
assemblages with mixtures of wetland and drought-tolerant taxa in tropical Pangea. Geobios,
68: 1–45. https://doi.org/10.1016/j.geobios.2021.04.002
Borisenko, Yu. A. 1975. Features of the late Carboniferous
lithogenesis in the south-western part of the Donbass. Geologiya i geohimiya iskopaemih
uglei, 44: 10–16. [In Russian]
Borisenko, Yu. A.
2014. Facies of continental and subcontinental sediments of the upper Carboniferous of
the western part of the Donets Coal Basin. Xarkov, 1–163. [In Russian]. https:// www.gigabaza.ru/doc/174649-pall.html
Boyarina, N. I. 2010. Late Gzhelian pteridosperms with
callipterid foliage of the Donets Basin, Ukraine. Acta Palaeontologica
Polonica, 55 (2): 343–359. https://doi.org/10.4202/app.2009.0020
Boyarina, N. I.
2016. The late Carboniferous palaeophytocoenoses of the Donets Basin (according to the
classification of vegetation by the Braun- Blanquet method). Problems of the
Phanerozoic geology of Ukraine: Collection of scientific works of the VII All-Ukrainian
Scientific Conference. Lviv, 36–39. [In Ukrainian]
Boyarina, N. I.
2017. Palaeophytocoenological studies of the late Carboniferous vegetation of the Donets
Basin. Collection of scientific works of the Institute of Geological Sciences of NAS of
Ukraine, 10: 4–14. [In Russian] https://doi.org/10.30836/igs.2522-9753.2017.141682
Boyarina, N. I.2022.
Late Pennsylvanian vegetation cover changes in the Donets Basin: syndynamic aspect. Visnyk
of V.N. Karazin Kharkiv National University, series "Geology. Geography. Ecology",
56: 8–23. https://doi.org/10.26565/2410-7360-2022-56-01
Boyarina, N. I.
2023. The Late Pennsylvanian vegetation of the Donets Basin, Ukraine: Syntaxonomy of plant
communities. GEO&BIO, 24: 64–98. https://doi.org/10.15407/gb2406
Braun-Blanquet, J.
1964. Pflanzensociologie. Grundzüge der Vegetationskunde. 3nd. ed. Springer-Verlag,
Aufl. Wien, 1–865.
Broutin, J., J. Doubinger, G. Farjanel, P. Freytet,
H. Kerp, [et al.]. 1990. Le renouvellement des flores au passage Carbonifére–Permian:
approche stratigraphique, biologique, sédimentologique. Comptes Rendus de l'Académie des
sciences, 2 (311): 1563–1569.
Cecil, C. B.
2013. An overview and interpretation of autocyclic and allocyclic processes and the
accumulation of strata during the Pennsylvanian–Permian transition in the central
Appalachian Basin, USA. International Journal of Coal Geology,
119: 21–31. https://doi.org/10.1016/j.coal.2013.07.012
Cecil, C. B.,
W. A. DiMichele,
S .D. Elrick.
2014. Middle and Late Pennsylvanian cyclothems, American Midcontinent: Ice-age environmental
changes and terrestrial biotic dynamics. Comptes Rendus.
Géoscience, 346 (7–8): 159–168. https://doi.org/10.1016/j.crte.2014.03.008
Cecil, C. B,
F. T. Dulong, R. R. West, R. Stamm, B. A. Wardlaw, N. T.
Edgar. 2003. Climate controls on the stratigraphy of a Middle Pennsylvanian cyclothem in
North America. In: Cecil, C. B., Edgar, N. T. (eds.). Climate controls on
stratigraphy. Special Publications,77: 151–182. https://doi.org/10.2110/pec.03.77.0151
Cecil, C. B,
R. W. Stanton, S. G. Neuzil, F. T. Dulong, L. F. Ruppert,
B. S. Pierce. 1985. Paleoclimate controls on late Paleozoic sedimentation and peat
formation in the central Appalachian Basin (U.S.A.). International Journal of Coal
Geology, 5: 195–230. https://doi.org/10.1016/0166-5162(85)90014-X
Cleal, C. J.
2007. The Westphalian-Stephanian macrofloral record from the South Wales Coalfield, UK. Geological
Magazine 144, 465–486. https://doi.org/10.1017/S0016756807003305
Cleal, C. J., B. A. Thomas. 2005. Palaeozoic
tropical rainforests and their effect on global climates: is the past the key to the
present? Geobiology, 3: 13–31. https://doi.org/10.1111/j.1472-4669.2005.00043.x
Cleal, C. J.,
S. Opluštil, B. A. Thomas, Y. Tenchov. 2011. Pennsylvanian vegetation
and climate in tropical Variscan Euramerica. Episodes, 34: 3–12.
https://doi.org/10.18814/epiiugs/2011/v34i1/002
Cleal, C. J.,
D. Uhl, B. Cascales-Miñana, B. A. Thomas, A. R. Bashforth, [et
al.]. 2012. Plant biodiversity changes in Carboniferous tropical wetlands. Earth-Science
Reviews, 114: 124–155. https://doi.org/10.1016/j.earscirev.2012.05.004
Cridland, A. A., J. E. Morris. 1963. Taeniopteris,
Walchia, and Dichophyllum in the Pennsylvanian system of Kansas. University
of Kansas Science Bulletin, 44: 71–82.
Davydov, V.I., J. L. Crowley,
M. D. Schmitz, V. I. Poletaev. 2010. High-precision U–Pb zircon age
calibration of the global Carboniferous time scale and Milankovitch band cyclicity in the
Donets Basin, eastern Ukraine. Geochemistry, Geophysics, Geosystems,
11 (1): 1–22. https://doi.org/10.1029/2009GC002736
DiMichele, W. A. 2014. Wetland-dryland vegetational dynamics
in the Pennsylvanian ice age tropics. International Journal of Plant Sciences,
175: 123–164. https://doi.org/10.1086/675235
DiMichele, W. A., R. B. Aronson. 1992. The
Pennsylvanian–Permian vegetational transition: a terrestrial analogue to the
onshore–offshore hypothesis. Evolution, 46: 807–824. https://doi.org/10.1111/j.1558-5646.1992.tb02086.x
DiMichele, W. A.,
T. L. Phillips. 1996. Climate change, plant extinctions, and vegetational recovery
during the Middle-Late Pennsylvanian transition: the case of tropical peat-forming
environments in North America. In: Hart, M. L. (ed.). Biotic Recovery
from Mass Extinctions. Geological Society, London, Special Publication,
102: 201–221. https://doi.org/10.1144/GSL.SP.1996.001.01.14
DiMichele, W. A., H W. Pfefferkorn, R. A. Gastaldo.
2001. Response of Late Carboniferous and Early Permian plant communities to climate change.
Annual Review of Earth and Planetary Science, 29: 461–487. https://doi.org/10.1146/annurev.earth.29.1.461
DiMichele, W. A.,
R. A. Gastaldo, H. W. Pfefferkorn. 2005.Plant biodiversity partitioning
in the Late Carboniferous and Early Permian and its implications for ecosystem assembly.
Proceedings of the California Academy of Sciences, 56 (1), No 4:
32–49.
DiMichele, W. A., N. J. Tabor, D. S. Chaney,
W J. Nelson. 2006. From wetlands to wet spots: environmental tracking and the fate
of Carboniferous elements in Early Permian tropical floras. In: Greb, S. F.,
DiMichele, W. A. (eds.). Wetlands through Time. Geological Society of America
Special Paper, 399: 223–248.
DiMichele, W. A.,
H. Kerp, N. J. Tabor, C. V. Looy. 2008. Revisiting the so-called
“Paleophytic–Mesophytic” transition in equatorial Pangea: vegetational integrity and
climatic tracking. Palaeogeography, Palaeclimatology, Palaeoecology,
268: 152–163. https://doi.org/10.1016/j.palaeo.2008.06.006
DiMichele, W. A., I. P. Montañez, C. J. Poulsen,
N. J. Tabor. 2009. Climate and vegetational regime shifts in the late Paleozoic
ice age earth. Geobiology, 7: 200–226. https://doi.org/10.1111/j.1472-4669.2009.00192.x
DiMichele, W. A.,
B. Cecil, I. P. Montañez, H. J. Falcon-Lang. 2010. Cyclic changes
in Pennsylvanian paleoclimate and its effects on floristic dynamics in tropical Pangaea.
International Journal Coal Geology, 83: 329–344. https://doi.org/10.1016/j.coal.2010.01.007
DiMichele, W. A., A. R. Bashforth, H. J. Falcon-Lang,
S. G. Lucas. 2020. Uplands, lowlands, and climate: Taphonomic megabiases and the
apparent rise of a xeromorphic, drought-tolerant flora during the Pennsylvanian-Permian
transition. Palaeogeography, Palaeoclimatology, Palaeoecology, 559.
Article 109965. Advance online publication. https://doi.org/10.1016/j.palaeo.2020.109965
DiMichele, W. A.,
C. F. Eble, H. W. Pfefferkorn, S. D. Elrick, W. J. Nelson,
[et al.]
. 2023. Kasimovian floristic
change in tropical wetlands and the Middle–Late Pennsylvanian Boundary Event. Geological
Society, London, Special Publications, 535 (1): 293–335. https://doi.org/10.1144/SP535-2022-228
DiMichele, W. A., S. G. Lucas, C. F. Eble,
H. Kerp, S. J. Reynolds, [et al.]. 2024. A detailed
stratigraphic and taphonomic reassessment of the late Paleozoic fossil flora from Promontory
Butte, Arizona. Review
of Palaeobotany and Palynology, 320:
105004. https://doi.org/10.1016/j.revpalbo.2023.105004
Dimitrova, T. K.,
C. J. Cleal, B. A. Thomas. 2011. Palynological evidence for
Pennsylvanian extra-basinal vegetation in Atlantic Canada. Journal of the Geological
Society, 168: 559–569. https://doi.org/10.1144/0016-76492010-028
Elrick, S. D.,
W. J. Nelson, P. R. Ames, W. A. DiMichele. 2017. Floras
characteristic of Late Pennsylvanian peat swamps arose in the late Middle Pennsylvanian.
Stratigraphy, 14: 123–141.
https://doi.org/10.29041/strat.14.1-4.123-141
Eros, J. M.,
I. P. Montañez, D. A. Osleger, V. I. Davydov, T. I. Nemyrovska,
[et al.]. 2012. Sequence stratigraphy and onlap history of the Donets Basin, Ukraine:
Insight into Carboniferous icehouse dynamics. Palaeogeography, Palaeoclimatology,
Palaeoecology, 313–314: 1–25. https://doi.org/10.1016/j.palaeo.2011.08.019
Gastaldo, R. A,
H. W. Pfefferkorn, W. A. DiMichele. 1995. Taphonomic and sedimentologic
characterization of roof-shale floras. Memoir of the Geological Society of America,
185: 341–52. https://doi.org/10.1130/MEM185-p341
Gastaldo, R. A. 1996. Flöznah and flözfern assemblages:
potential predictors of Late Carboniferous biome replacement? In: Leary, R. L.
(ed.). Patterns in Paleobotany: Proceedings of a Czech–U.S. Carboniferous Paleobotany
Workshop. Illinois State Museum Scientific Papers, 26:19–27.
Gorak, S.V.,
V.I. Poletaev. 1993. Hercynian cycle of tectonic history of Ukraine (Middle
Devonian-Permian). In: Tsehelnyuk, P.D. (ed.). Geological history of the
territory of Ukraine. Paleozoic. Naukova Dumka,Kyiv, 69–75. [in Russian]
Havlena, V.
1971. Die zeitgleichen Floren des europäischen Oberkarbons und die mesophile Floras des
Ostrau-Karwiner Steinkohlenreviers. Review of Palaeobotany and Palynology, 12:
245–270. https://doi.org/10.1016/0034-6667(71)90015-7
Heckel, P. H.
2008. Pennsylvanian cyclothems in Midcontinent North America as farfield effects of waxing
and waning of Gondwana ice sheets. In: Fielding, C. R., Frank, T. D.,
Isbell, J. L. (eds.). Resolving the late Paleozoic Ice Age in Time and Space.
Geological Society of America Special Paper, 441: 275–289. https://doi.org/10.1130/2008.2441(19)
Horton, D. E,
C. J. Poulsen, D. Pollard. 2010. Influence of high-latitude vegetation
feedback on late Paleozoic glacial cycles. Nature Geoscience, 3:
572–577. https://doi.org/10.1038/ngeo922
Isbell, J. L.,
L. C. Henry, E. L. Gulbranson, C. O. Limarino, M. L. Fraiser,
[et al.]. 2012. Glacial paradoxes during the late Paleozoic ice age; evaluating the
equilibrium line altitude as a control on glaciation. Gondwana Research,
22: 1–19. https://doi.org/10.1016/j.gr.2011.11.005
Falcon-Lang, H. J. 2003. Response of Late Carboniferous
tropical vegetation to transgressive–regressive rhythms at Joggins, Nova Scotia. Journal
of the Geological Society, 160: 643–648. https://doi.org/10.1144/0016-764902-114
Falcon-Lang, H. J. 2004. Pennsylvanian tropical rain forests responded to
glacialinterglacial rhythms. Geology, 32: 689–692. https://doi.org/10.1130/G20523.1
Falcon-Lang, H. J., W. J. Nelson, S. Elrick,
C. V. Looy, P R. Ames, [et al.]. 2009. Incised channel fills containing
conifers indicate that seasonally dry vegetation dominated Pennsylvanian tropical lowlands.
Geology, 37: 923–926. https://doi.org/10.1130/G30117A.1
Falcon-Lang, H. J., W. J. Nelson, P. H. Heckel,
W. A. DiMichele, S. D. Elrick. 2018. New insights on the stepwise
collapse of the Carboniferous Coal Forests: evidence from cyclothems and coniferopsid
tree-stumps near the Desmoinesian–Missourian boundary in Peoria County, Illinois, USA. Palaeogeography,
Palaeoclimatology, Palaeoecology, 490; 375–392. https://doi.org/10.1016/j.palaeo.2017.11.015
Feofilova, A. P. 1966. Transition of coalbearing
deposits to saltbearing in western part of the Donets Basin. Nauka, Moscow, 1–176. [In
Russian]
Fielding, C. R., T. D. Frank, J. L. Isbell.
2008. The late Paleozoic ice age — A review of current understanding and synthesis of global
climate patterns. In:Fielding, C. R., Frank, T. D., Isbell, J. L.
(eds). Resolving the Late Paleozoic Ice Age in Time and Space. Geological
Society of America Special Paper, 441: 343–354. https://doi.org/10.1130/2008.2441(24)
Fisunenko, O. P.
1975. The Donets Basin as a floristic standard of the Carboniferous in the south of the
European part of the USSR. In: Timofeev, P. P. (ch. ed.). Stratigraphy of
the Carboniferous and geology of coal-bearing formations of the USSR: Proceedings of the
VII International Congress on Stratigraphy and Geological of the Carboniferous.
Nedra, Moskow, 90–101. [In Russian]
Fisunenko, O. P.
1991. Zonal phytostratigraphical scale of the Lower and Middle Carboniferous of the Donets
Basin. Geologichnyj zhurnal, 3 (258): 55–64. [In Russian]
Fisunenko, O. P.
2000. On the problem of the Moscovian Stage. Izdatelstvo LGPU, Lygansk, 1–66. [In
Russian]
Looy, C. V., H. Kerp, I. A. P. Duijnstee,
W. A. DiMichele. 2014. The Late Paleozoic ecological-evolutionary laboratory, a
land-plant fossil record perspective. Sedimentary Record, 12:
4–10. https://doi.org/10.
2110/sedred.2014.4.4
Looy, C. V., R. A. Stevenson, T. B. Van
Hoof, L. Mander. 2014. Evidence for coal forest refugia in the seasonally dry
Pennsylvanian tropical lowlands of the Illinois Basin, USA. PeerJ,
2: e630. https://doi.org/10.7717/peerj.630
Lyons, P. C.,
W. C. Darrah. 1989. Earliest conifers in North America: upland and/or
paleoecological indicators? Palaios, 4: 480–486. https://doi.org/10.2307/3514592
Mirkin, B. M., L. G. Naumova. 2012. Current
state of basic concepts in plant science. Gilem, Ufa, 1–488. [In Russian]
Montañez, I. P.
2022. Current synthesis of the penultimate icehouse and its imprint on the Upper Devonian
through Permian stratigraphic record. In: Lucas, S. G., Schneider, J. W.,
Wang, X., Nikolaeva, S. (eds.). The Carboniferous Timescale. Geological
Society, London, Special Publications, 512: 213–245. https://doi.org/10.1144/SP512-2021-124
Montañez, I. P.,
C. J. Poulsen. 2013. The late Paleozoic ice age: an evolving paradigm. Annual
Review of Earth and Planetary Science: 629–656. https://doi.org/10.1146/annurev.earth.031208.100118
Montañez, I. P., N. J. Tabor, D. Niemeier, W. A. DiMichele,
T. D. Frank, [et al.]. 2007. CO2-forced climate instability and linkages to
tropical vegetation during Late Paleozoic deglaciation. Science,
315: 87–91. https://doi.org/10.1126/science.1134207
Opluštil, S., C. J. Cleal. 2007. A comparative analysis
of some Late Carboniferous basins of Variscan Europe. Geological Magazine, 144:
417–448. https://doi.org/10.1017/S0016756807003330
Opluštil, S.,
Z. Šimůnek, J. Zajíc, V. Mencl. 2013. Climatic and biotic changes around the
Carboniferous/Permian boundary recorded in the continental basins of the Czech Republic.
International Journal of Coal Geology, 119: 114–151. https://doi.org/10.1016/j.coal.2013.07.014
Peyser C. E.,
C. J. Poulsen. 2008. Controls on Permo-Carboniferous precipitation over tropical
Pangaea: a GCM sensitivity study. Palaeogeography, Palaeoclimatology, Palaeoecology,
268: 181–192. https://doi.org/10.1016/j.palaeo.2008.03.048
Pfefferkorn, H. W. 1980. A note on the term “upland flora”.
Review of Palaeobotany and Palynology, 30: 157–158. https://doi.org/10.1016/0034-6667(80)90011-1
Pfefferkorn, H. W,
M. Thomson. 1982. Changes in dominance patterns in Upper Carboniferous plant-fossil
assemblages. Geology, 10: 641– 44. https://doi.org/10.1130/0091-7613(1982)10<641:CIDPIU>2.0.CO;2
Pfefferkorn, H. W, R. A. Gastaldo, W A. DiMichele.
2017. Impact of an icehouse climate interval on tropical vegetation and plant
evolution. Stratigraphy,
14
(1–4): 365–376. https://doi.org/10.29041/strat.14.1-4.365-376
Phillips, T. L., R. A. Peppers. 1984. Changing
patterns of Pennsylvanian coal-swamp vegetation and implications of climatic control on coal
occurrence. International Journal of Coal Geology, 3: 205–255.
https://doi. org/10.1016/0166-5162(84)90019-3
Poletaev, V. I.,
M. V. Vdovenko, O. K. Shchogolev, N. I. Boyarina, I. A. Makarov.
2011. Stratotypes of the Carboniferous and Lower Permian regional stratigraphic
subdivisions of the Don-Dnieper Depression. Logos,Kyiv, 1–236. [In Ukrainian]
Richey, J. D,
I. P. Montañez, Y. Goddéris, C. V. Looy, N. P. Griffis,
W. A. DiMichele. 2020. Influence
of temporally varying weatherability on CO2-climate coupling and ecosystem
change in the late Paleozoic. Climate of the Past, 16 (5):
1759–1775. https://doi.org/10.5194/cp-16-1759-2020
Richey, J. D.,
I P. Montañez, J. D. White, W. A. DiMichele, W. Matthaeus,
[et al.]. 2021. Modeled physiological mechanisms for observed changes in the late Paleozoic
plant fossil record. Palaeogeography, Palaeoclimatology, Palaeoecology,
562: 110056. https://doi.org/10.1016/j.palaeo.2020.110056
Scott, A. C.
1977. A review of the ecology of Upper Carboniferous plant assemblages with new data from
Strathclyde. Palaeontology, 20: 447–73.
Shchegolev, A. K.
1964. Differentiation of vegetation in the late Carboniferous of the Westphalian Province.
Questions of regularities and forms of development of the organic world: Proceedings of
the VII session of the VPO. Nedra, Moscow, 158–170.
[in Russian]
Shchegolev, A. K. 1965. Flora at the Carboniferous-Permian
boundary in the Donetsk Basin. In: Geology of coal-bearing formations and
stratigraphy of the Carboniferous of the USSR. Nauka, Moscow, 234–243. [In Russian]
Shchegolev, A. K.1975. Evolution of the flora and vegetation
of the territory of the south of the European part of the USSR from the end of the Middle
Carboniferous to the beginning of the Permian. The volume and division of the upper,
Stephanian, division of the Carboniferous system. In: Timofeev, P. P. (ch.
ed.). Stratigraphy of the Carboniferous and geology of coal-bearing formations of the
USSR: Proceedings of the VII International Congress on Stratigraphy and Geological of
the Carboniferous. Nedra, Moskow, 101–108. [In Russian]
Shchegolev, A. K.
1991. Lycopsida and Sphenopsida of the late Carboniferous. Naukova dumka, Kiev,
1–128. [in Russian]
Stratigraphyof the Upper Proterozoic and Phanerozoic of Ukraine in two
volumes. Vol. 1: Stratigraphy of the Upper Proterozoic, Paleozoic and
Mesozoic of Ukraine. 2013. Gozhyk, P. F. (Chief ed.). Logos, Kiev, 1–637. [In
Ukrainian]
Sukachev, V. N. 1928. Plant communities (Introduction to
phytosociology). Kniga, Moscow-Leningrad, 1–232. [In Russian]
Sukachev, V. N.
1954. Some general theoretical questions of phytocoenology. Botany issues, 1:
291–309. [In Russian]
Tabor, N. J, C. J. Poulsen. 2008. Palaeoclimate
across the Late Pennsylvanian–Early Permian tropical palaeolatitudes: a review of climate
indicators, their distribution, and relation to palaeophysiographic climate factors. Palaeogeography,
Palaeoclimatology, Palaeoecology,268, 293–310. https://doi.org/10.1016/j.palaeo.2008.03.052
Thomas, B. A.,
C. J. Cleal. 2017. Distinguishing Pennsylvanian-age lowland, extrabasinal and
upland vegetation. Palaeobiodiversity and Palaeoenvironments, 97:
273–293. https://doi.org/10.1007/s12549-017-0277-0
Van der Maarel, E.
1988. Vegetation dynamics: patterns in Time and Space. Vegetatio,
77: 7–19. https://doi.org/10.1007/BF00045745
Wagner, R. H., 1997. Floral palaeoecology of the
Carboniferous/Permian. In: Aguirre, E., Morales, J., Soria, D. (eds.). Registros
Fósiles e Historia de la Tierra. Cursos de Verano de El Escorial, Editorial
Complutense, Madrid, 143–172.
Willard, D. A., T. L. Phillips, A. D. Lesnikowska,
W. A. DiMichele. 2007. Paleoecology of the Late Pennsylvanian-age Calhoun coal bed
and implications for long-term dynamics of wetland ecosystems. International Journal of
Coal Geology, 69: 21–54. https://doi.org/10.1016/j.coal.2006.03.011
Zhemchuzhnikov, Y. A.,
V. S. Yablokov, L. I. Bogolioubova, L. I. Botvinkina, A. P. Feofilova,
[et al.]. 1960. Structure and environment of the main coal-bearing suites and coal seams of
the middle Carboniferous of the Donets Basin. II. Trudy Geological Institute Akademii
Nauk SSSR, 15: 1–347. [In Russian]
|