Publication Cover
Historical Biology
An International Journal of Paleobiology
Volume 36, 2024 - Issue 5
115
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

Paleo-vegetation and paleo-climate characteristics of Cretaceous and Paleogene strata in several typical basins in China: palynological evidence

ORCID Icon, ORCID Icon, , , , & show all
Pages 1079-1091 | Received 01 Apr 2023, Accepted 15 Apr 2023, Published online: 27 Apr 2023

References

  • Abadie M, Taugourdeau-Lantz J. 1982. Ultrastructure de la paroi de Leiosphaeridia ferquensis (Taug. Lantz 1960) Taug. Lantz 1968, Tasmanite du Dévonien supérieur. Bulletin de la Société Botanique de France. Lettres Botaniques. 129(4–5):271–275. doi:10.1080/01811797.1982.10824552.
  • Banerjee A, Sharma R, Chisti Y, Banerjee UC. 2002. Botryococcus braunii: a renewable source of hydrocarbons and other chemicals. Crit Rev Biotechnol. 22(3):245–279. doi:10.1080/07388550290789513.
  • Brownsey PJ, Parris BS, Perrie LR. 2021. Taxonomic notes on the New Zealand flora: lectotypes in polypodiaceae and blechnaceae. N Z J Botan. 59(2):244–249. doi:10.1080/0028825X.2020.1822885.
  • Courtin J, Andreev AA, Raschke E, Bala S, Biskaborn BK, Liu SS, Zimmermann H, Diekmann B, Stoof-Leichsenring KR. 2021. Vegetation changes in southeastern Siberia the late Pleistocene and the Holocene. Frontiers in Wcology and Ecolution. 9:625096. doi:10.3389/fevo.2021.625096
  • Dehghani M, Djamali M, Akhani H. 2020. Pollen morphology of the subfamily Salicornioideae (Chenopodiaceae s.s.) in Eurasia and North Africa. Palynology. 45(2):245–258. doi:10.1080/01916122.2020.1784304.
  • Drenkhan R, Kaldmae H, Silm M, Adamson K, Bleive U, Aluvee A, Raal A, Raal A. 2022. Comparative analyses of bioactive compounds in inonotus obliquus conks growing on alnus and betula. Biomolecules. 12(9):1178. doi:10.3390/biom12091178.
  • Ehsan D. 2019. Geochemistry and origins of Sarvak oils in Abadan plain: oil-oil correlation and migration studies. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. 43(6):716–726. doi:10.1080/15567036.2019.1631908.
  • Estevam BR, Pinto LFR, Filho RM, Fregolente LV. 2022. Potential applications of Botryococcus terribilis: a review. Biomass Bioenergy. 165(106582). doi:10.1016/j.biombioe.2022.106582.
  • Fauquette S, Guiot J, Suc JP. 1998. A method for climatic reconstruction of the Mediterranean Pliocene using pollen data. Palaeogeogr Palaeoclimatol Palaeoecoly. 144:183–201. doi:10.1016/S0031-0182(98)00083-2
  • Gernandt DS, Lopez GG, Garcia SO, Liston A. 2005. Phylogeny and classification of Pinus. TAXON. 54(1):29–42. doi:10.2307/25065300.
  • Gerta K, Paula M, Johannes M, Nicolas T, Punekar JN. 2020. Mercury linked to Deccan Traps volcanism, climate change and the end-Cretaceous mass extinction. Glob Planet Change. 194:103312. doi:10.1016/j.gloplacha.2020.103312
  • Guacchio ED, Cambria S, Brullo S. 2021. Typification of the name Ephedra nebrodensis (Ephedraceae). Phytotaxa. 496(1):90–92. doi:10.11646/phytotaxa.496.1.5.
  • Guo YC, Cao J, Liu RQ, Wang HF, Zhang HY. 2022. Hydrocarbon accumulation and alteration of the Upper Carboniferous Keluke Formation in the eastern Qaidam Basin: insights from fluid inclusion and basin modelling. J Petroleum Sci Engine. 211:110116. doi:10.1016/j.petrol.2022.110116
  • Guo P, Liu CY, Wang LQ, Zhang GQ, Fu XG. 2019. Mineralogy and organic geochemistry of the terrestrial lacustrine pre-salt sediments in the Qaidam Basin: implications for good source rock development. Mar Pet Geol. 107:149–162. doi:10.1016/j.marpetgeo.2019.04.029
  • He X, Lu JG, Li WY, Zhu SB, Zhao LP, Ma ZW, Zhu J, Han MM, Chen SJ. 2022. Geochemical features of source rocks and oil in saline and freshwater lake environments: a case study in the southwest Qaidam Basin. J Petroleum Sci Engine. 218:110948. doi:10.1016/j.petrol.2022.110948
  • Hernandez-Castillo GR, Stockey RA, Beard G. 2005. Taxodiaceous pollen cones from the early Tertiary of British Columbia, Canada. Int J Plant Sci. 166(2):339–346. doi:10.1086/427485.
  • Jankovská V, Komárek J. 2000. Indicative value of Pediastrum and other coccal green algae in palaeoecology. Folia Geobot. 35:59–82. doi:10.1007/BF02803087
  • Komárek J, Jankovská V. 2001. Review of the green algal genus pediastrum: implication for pollen analytical research. In: Germany: bibliotheca Phycologica. Polish Botanical Journal; p. 1–111.
  • Li CX, Liu Z, Wang SC, Xu ZY, Chen SG, You XL, Wang B. 2022. Prediction of major source rocks distribution in the transition from depressed to rifted basin using seismic and geological data: the Guyang to Linhe Formations in the Linhe Depression, Hetao Basin, China. J Petroleum Sci Engine. 214:110472. doi:10.1016/j.petrol.2022.110472
  • Liu C, Jiang ZX, Zhou XW, Duan Y, Lei HR, Wang XY, Quaye JA. 2021. Paleocene storm-related event beds in the Gaoyou Sag of the Subei Basin, eastern China: a new interpretation for these deep lacustrine sandstones. Mar Pet Geol. 124:104850. doi:10.1016/j.marpetgeo.2020.104850
  • Li BS, Yan MD, Zhang WL, Fang XM, Yang YP, Zhang DW, Guan C, Bao J. 2021. Two-stage strike-slip faulting of the Altyn Tagh Fault revealed by magnetic fabrics in the Qaidam Basin. Tectonophysics. 821(20):229142. doi:10.1016/j.tecto.2021.229142.
  • Li XM, Zhang HP, Wang YZ, Zhao XD, Ma ZF, Liu K, Ma Y. 2020. Inversion of bedrock channel profiles in the Daqing Shan in Inner Mongolia, northern China: implications for late Cenozoic tectonic history in the Hetao Basin and the Yellow River evolution. Tectonophysics. 790(5):228558. doi:10.1016/j.tecto.2020.228558.
  • Miao YF, Fang XM, Liu YS, Yan XL, Li SY, Xia WM. 2016. Late Cenozoic pollen concentration in the western Qaidam Basin, northern Tibetan Plateau, and its significance for paleoclimate and tectonics. Rev Palaeobot Palynol. 231:14–22. doi:10.1016/j.revpalbo.2016.04.008
  • Morton AC. 1987. Influences of provenance and diagenesis on detrital garnet suites in the Paleocene Forties sandstone, Central North Sea. J Sediment Res. 57(6):1027–1032.
  • Niu H, Liang X, Lu GP, Peng F, Jin MG, Gu YS. 2017. A study of clay pore water and sporopollens for characterizing paleoenvironments in the Hebei Plain, Northern China. J Asian Earth Sci. 143(1–10). doi:10.1016/j.jseaes.2017.03.035.
  • O’Brien CL, Huber M, Thomas E, Pagani M, Super JR, Elder LE, Hull PM. 2020. The enigma of Oligocene climate and global surface temperature evolution. Proceedings of the National Academy of Sciences of the United States of America; In America. 117(41): 25302–25309I. doi:10.1073/pnas.2003914117.
  • Pang YM, Zou KZ, Guo XW, Chen Y, Zhao J, Zhou F, Zhu J, Duan LF, Yang GX. 2022. Geothermal regime and implications for basin resource exploration in the Qaidam Basin, northern Tibetan Plateau. J Asian Earth Sci. 239:105400. doi:10.1016/j.jseaes.2022.105400
  • Peters K, Cassa M. 1994. Applied source rock geochemistry. In: Magoon, L., Dow, W. (editors). AAPG Memoir 60, the Petroleum System from Source to Trap. AAPG, Tulsa. p. 93–120.
  • Qiu X, Qian S, Yu W, Liu Q. 2016. Main achievements, new understanding and technological progress for oil and gas exploration in North Jiangsu Basin during the 12th Five-Year Plan. China Petrol Geol. 99. 393–415. In Chinese with English abstract
  • Quan YB, Liu JZ, Zhao DJ, Hao F, Wang ZF, Tian JQ. 2015. The origin and distribution of crude oil in Zhu III sub-basin, Pearl River Mouth Basin, China. Mar Pet Geol. 66(4):732–747. doi:10.1016/j.marpetgeo.2015.07.015.
  • Schmid R, Heywood V. 1986. Flowering Plants of the World. Taxon. 35(2):335.
  • Straume EO, Nummelin A, Gaina G, Nisancioglu KH. 2022. Climate transition at the Eocene-Oligocene influenced by bathymetric changes to the Atlantic-Arctic oceanic gateways. Proceedings of the National Academy of Sciences of the United States of America; In America. 119 (17): e2115346119. Doi:10.1073/pnas.2115346119.
  • Tahoun SS, Mohamed O. 2015. Leiosphaeridia and Pterospermella acritarch genera as shallowing phase indicators in the early Jurassic, North Sinai, Egypt. Arabian J Geosci. 8(7):4581–4588. doi:10.1007/s12517-014-1500-1.
  • Tang YJ, Zhang JZ, Li MJ, Liu Y, Li MR, Sun P. 2020. Origin of crude oils from the paleogene Xingouzui formation in the Jiangling depression of Jianghan basin, central China. J Petroleum Sci Engine. 195:107976. doi:10.1016/j.petrol.2020.107976
  • Tissot BP, Welte DG. 1984. Petroleum Formation and Occurrence. In: Springer-Verlag, Berlin. 2nd ed. Geological Magazine; p. 699.
  • Wang QF, Jiang FJ, Ji HC, Jiang S, Liu XH, Zhao Z, Wu YQ, Xiong H, Li Y, Wang Z. 2020. Effects of paleosedimentary environment on organic matter enrichment in a saline lacustrine rift basin - A case study of Paleogene source rock in the Dongpu Depression, Bohai Bay Basin. J Petroleum Sci Engine. 195:107658. doi:10.1016/j.petrol.2020.107658
  • Wei XP, Zhang XC. 2016. Distributional patterns of the monolete and trilete ferns in China. Biodivers Sci. 24(10):1129–1134. doi: 10.17520/biods.2016219. In Chinese
  • Wu FL, Herrmann M, Fang XM. 2014. Early Pliocene paleo-altimetry of the Zanda Basin indicated by a sporopollen record. Palaeogeogr Palaeoclimatol Palaeoecol. 412(15):261–268. doi:10.1016/j.palaeo.2014.08.006
  • Wu ZY, Zhu YC, Jiang HQ. 1987. Yunnan vegetation. Beijing: Science Press; p. 1–1024. Chinese
  • Xiao ZL, Chen SJ, Liu CW, Lu ZX, Zhu J, Han MM. 2021. Lake basin evolution from early to Middle Permian and origin of Triassic Baikouquan oil in the western margin of Mahu Sag, Junggar Basin, China: evidence from geochemistry. J Petroleum Sci Engine. 203:108612. doi:10.1016/j.petrol.2021.108612
  • Xiao JY, Wang D, Lv HB, Zhao ZJ, Shu Q, Chen Y, Zhang MH, Guo P. 2005. A study on sporopollen records and climatic stratigraphy in subei basin since late pleistocene. Acta Palaeontologica Sinica. 04. 591–598. Chinese
  • Yang XC, Cai MT, Hu JM, Ye PS, Ji FB, Zhang ZG, Liu H, Jia LY, Zhang XJ. 2020. The paleolake hydrology and climate change since the ~40 ka in the Hetao Basin, Inner Mongolia, China. Quat Int. 553(10):73–82. doi:10.1016/j.quaint.2020.06.040.
  • Ybert JP. 1992. Ancient Lake Environments as Deduced from Pollen Analysis. In: Deioux C, Iltis A, editors. Lake Titicaca: a Synthesis of Limnological Knowledge. Boston: Kluwer Academic Publishers; p. 49–62.
  • Zhang RF, Lu JG, Shi YL, Chen SG, Zhou RR, Zhao RQ, Yuan M, Zhou YX. 2022. Hydrocarbon potential and sedimentary environment of organic matter in source rocks of Linhe and Guyang Formations in Linhe depression, Hetao Basin. Arabian J Geosci. 15(11):1084. doi:10.1007/s12517-022-10309-w.
  • Zhou X, Jiang Z, Quaye JA, Duan Y, Hu C, Liu C, Han C. 2019. Ichnology and sedimentology of the trace fossil-bearing fluvial red beds from the lowermost member of the Paleocene Funing Formation in the Jinhu Depression, Subei Basin, East China. Mar Petrol Geol. 99:393–415. doi:10.1016/j.marpetgeo.2018.10.032

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.