Monsoonal climate of East Asia in Eocene times inferred from an analysis of plant functional types

Palaeogeography, Palaeoclimatology, Palaeoecology - Tập 601 - Trang 111138 - 2022
Qijia Li1, Torsten Utescher2, Yusheng (Christopher) Liu3, David Ferguson4, Hui Jia5, Cheng Quan1
1School of Earth Science and Resources, Chang’an University, Xi’an 710054, China
2Senckenberg Research Institute and Natural History Museum, 53115 Frankfurt am Main, Germany
3Department of Earth & Environmental Sciences, University of Missouri-Kansas City, Kansas City, MO 64110, USA
4Department of Paleontology, University of Vienna, 1090 Vienna, Austria
5School of Earth Sciences and Engineering, Xi'an Shiyou University, Xi'an, 710065, China

Tài liệu tham khảo

Aleksandrova, 2015, Palynological and paleobotanical investigations of Paleogene sections in the Maoming Basin, South China, Stratigr. Geol. Correl., 23, 300, 10.1134/S0869593815030028 APE and NIGP (Academy of Petroleum Exploration of Development and Planning Research of the Ministry of Petroleum and Chemical Industries, and Nanjing Institute of Geology and Paleontology of Chinese Academy of Sciences), 1978, 1 Barbolini, 2020, Cenozoic evolution of the steppe-desert biome in Central Asia, Sci. Adv., 6, 10.1126/sciadv.abb8227 Bondarenko, 2021, Paleogene vegetation changes in Primorye, Far East of Russia: a study based on diversity of plant functional types, Geol. J., 56, 650, 10.1002/gj.3788 Bosboom, 2014, Timing, cause and impact of the late Eocene stepwise sea retreat from the Tarim Basin (West China), Palaeogeogr. Palaeoclimatol. Palaeoecol., 403, 101, 10.1016/j.palaeo.2014.03.035 Bouchenak-Khelladi, 2009, The origins and diversification of C4 grasses and savanna-adapted ungulates, Glob. Chang. Biol., 15, 2397, 10.1111/j.1365-2486.2009.01860.x Bozukov, 2009, Late Eocene to early Miocene climate and vegetation of Bulgaria, Rev. Palaeobot. Palynol., 153, 360, 10.1016/j.revpalbo.2008.10.005 Chen, 1983, On the discovery of Old Tertiary flora in Western Plateau Sichuan and its significance, Acta Bot. Sin., 25, 195 Cramwinckel, 2018, Synchronous tropical and polar temperature evolution in the Eocene, Nature, 559, 382, 10.1038/s41586-018-0272-2 Deng, 2020, Sharp changes in plant diversity and plant-herbivore interactions during the Eocene–Oligocene transition on the southeastern Qinghai–Tibetan Plateau, Glob. Planet. Chang., 194, 103293, 10.1016/j.gloplacha.2020.103293 Dong, 2019, The “cross-tectonics” in China continent: formation, evolution and its significance for continental dynamics, J. Geom., 25, 769 Duan, 2007, Sporopollen assemblage from the Totohe Formation and its stratigraphic significance in the Tanggula Mountains, northern Tibet, Earth. Sci. J. China U. Geosci., 32, 623 Dupont-Nivet, 2008, Tibetan uplift prior to the Eocene–Oligocene climate transition: evidence from pollen analysis of the Xining Basin, Geology, 36, 987, 10.1130/G25063A.1 Fan, 1985, Spore-pollen assemblages of Paleocene Xinancun formation in Shulan Coalfield, Coal Technol. Northeast China, 3, 13 Farnsworth, 2019, Past East Asian monsoon evolution controlled by paleogeography, not CO2, Sci. Adv., 5, 10.1126/sciadv.aax1697 Forrest, 2015, Climate–vegetation modelling and fossil plant data suggest low atmospheric CO2 in the late Miocene, Clim. Past, 11, 1701, 10.5194/cp-11-1701-2015 François, 2011, Modelling Late Miocene vegetation in Europe: results of the CARAIB model and comparison with palaeovegetation data, Palaeogeogr. Palaeoclimatol. Palaeocecol., 304, 359, 10.1016/j.palaeo.2011.01.012 Garamvoelgyi, 2013, Impacts of climate change on vegetation distribution no. 1 climate change induced vegetation shifts in the palearctic region, Appl. Ecol. Environ. Res., 11, 79, 10.15666/aeer/1101_079122 Guo, 1979, Late Cretaceous and Early Tertiary floras from the southern Guangdong and Guangxi with their stratigraphic significance, 223 Guo, 2006, Discovery of Paleogene palynological assemblages from the Wanbaogou Group-complex in western part of the Eastern Kunlun orogenic belt and its geological significance, Sci. China Ser. D, 49, 358, 10.1007/s11430-006-0358-9 Guo, 2008, A major reorganization of Asian climate by the early Miocene, Clim. Past, 4, 153, 10.5194/cp-4-153-2008 Han, 2020, Early Eocene palynological assemblages from Donglutian Coal Mine in Fushun Basin and their paleoclimatic significance, Global Geol., 39, 72 He, 1977, Palynological investigation of Palaeogene in the Qingjiang Basin in Kiangsi Province I, Acta Bot. Sin., 19, 72 He, 1997, A study on the Eocene flora in Yilan County, Heilongjiang, Acta Phytotaxonomica Sin., 35, 249 Henrot, 2017, Middle Miocene climate and vegetation models and their validation with proxy data, Palaeogeogr. Palaeoclimatol. Paleocecol., 467, 96 Hong, 1980, 1 Jiang, 1998, The geological significance of “Cross-Tectonics” of China and its effects on resources and ecological environment, Geol. China, 2, 42 Kapp, 2019, Mesozoic–Cenozoic geological evolution of the Himalayan-Tibetan orogen and working tectonic hypotheses, Am. J. Sci., 319, 159, 10.2475/03.2019.01 Lee, 2006, Geologic evolution and aspects of the petroleum geology of the northern East China Sea shelf basin, AAPG Bull., 90, 237, 10.1306/08010505020 Li, 1998, Eocene palynology of Well LF13-2-1 in Pearl River Mouth Basin, China Offshore Oil Gas (Geology), 12, 168 Li, 2005, The late cretaceous and Paleogene palynological assemblages from Xuanzhou, Anhui Province, Acta Micropalaeontol. Sinica, 22, 59 Li, 2002, Palibina from the Eocene of Jiangxi, China—with remarks on the dry climate mechanism of Northern Hemisphere in Paleogene, Acta Palaeontol. Sin., 41, 119 Li, 2009, Palynofloral assemblages from the Dagzhuka Formation at Qiabulin, Xigaze, Xizang (Tibet): their age and bearing on palaeoenvironments and palaeogeography, Acta Palaeobot. Sin., 48, 163 Li, 2018, Do climate simulations support the existence of East Asian monsoon climate in the late Eocene?, Palaeogeogr. Palaeoclimatol. Palaeoecol., 509, 47, 10.1016/j.palaeo.2017.12.037 Li, 2021, Orographic evolution of northern Tibet shaped vegetation and plant diversity in eastern Asia, Sci. Adv., 7 Li, 2022, Eocene hyperthermal events in the terrestrial system: Geochronological and astrochronological constraints in the Fushun Basin, NE China, Mar. Pet. Geol., 139, 105604, 10.1016/j.marpetgeo.2022.105604 Licht, 2014, Asian monsoons in a late Eocene greenhouse world, Nature, 513, 501, 10.1038/nature13704 Liu, 1987, Early Tertiary palynological assemblages of Hunchun Coalfield, Jilin Province, Prof. Papers Stratigr. Palaeontol., 17, 167 Liu, 1990, The Eocene spore pollen assemblages from the Dalianhe Formation, Yilan Coalfield, Heilongjiang Province, Bull. Shenyang Inst. Geol . Min. Res. Chinese Academy of Geological Sciences, 20, 111 Liu, 1999, Pollen assemblages of the late Eocene Nadu Formation from the Bose Basin of Guangxi, southern China, Palynology, 23, 97, 10.1080/01916122.1999.9989524 Liu, 1998, Initiation and evolution of the Asian monsoon system timely coupled with the ice-sheet growth and the tectonic movements in Asian, Quat. Sci., 3, 193 Ma, 1995, The red bed sproro-pollen assemblages and geological age from Zheerzhuang of Yaojie, Gansu, Acta Sedimentaol. Sin., 13, 64 Ma, 2012, Spatiotemporal evolution of Paleogene palynoflora in China and its implication for development of the extensional basins in East China, Rev. Palaeobot. Palynol., 184, 24, 10.1016/j.revpalbo.2012.07.013 Ma, 2019, Stable isotope record of middle Eocene summer monsoon and its instability in eastern China, Glob. Planet. Chang., 175, 103, 10.1016/j.gloplacha.2019.02.007 Manchester, 2005, Middle Eocene flora of Huadian, Jilin Province, Northeastern China, Acta Palaeobot., 45, 3 Meijer, 2019, Central Asian moisture modulated by proto-Paratethys Sea incursions since the early Eocene, Earth Planet. Sci. Lett., 510, 73, 10.1016/j.epsl.2018.12.031 Meng, 2018, Quantitative reconstruction of Middle and late Eocene paleoclimate based on palynological records from the Huadian Basin, northeastern China: evidence for monsoonal influence on oil shale formation, Palaeogeogr. Palaeoclimatol. Palaeoecol., 510, 63, 10.1016/j.palaeo.2017.11.036 Miao, 2008, Late Eocene pollen records and palaeoenvironmental changes in northern Tibetan Plateau, Sci. China Ser. D, 51, 1089, 10.1007/s11430-008-0091-7 Miao, 2016, A Late–Eocene palynological record from the Hoh Xil Basin, northern Tibetan Plateau, and its implications for stratigraphic age, paleoclimate and paleoelevation, Gondwana Res., 31, 241, 10.1016/j.gr.2015.01.007 Molnar, 2009, Slowing of India's convergence with Eurasia since 20 Ma and its implications for Tibetan mantle dynamics, Tectonics, 28, 10.1029/2008TC002271 Mosbrugger, 1997, The coexistence approach–a method for quantitative reconstructions of Tertiary terrestrial palaeoclimate data using plant fossils, Palaeogeogr. Palaeoclimatol. Palaeoecol., 134, 61, 10.1016/S0031-0182(96)00154-X Müller, 2018, GPlates: building a virtual Earth through deep time, Geochem. Geophys. Geosyst., 19, 2243, 10.1029/2018GC007584 Ni, 2020, Paleogene mammalian fauna exchanges and the paleogeographic pattern in Asia, Sci. China Earth Sci., 63, 202, 10.1007/s11430-019-9479-1 Northrup, 1995, Motion of the Pacific plate relative to Eurasia and its potential relation to Cenozoic extension along the eastern margin of Eurasia, Geology, 23, 719, 10.1130/0091-7613(1995)023<0719:MOTPPR>2.3.CO;2 Parsons, 2020, Geological, geophysical and plate kinematic constraints for models of the India-Asia collision and the post-Triassic central Tethys oceans, Earth Sci. Rev., 103084 Popova, 2013, Vegetation change in Siberia and the northeast of Russia during the Cenozoic cooling: a study based on diversity of plant functional types, Palaios, 28, 418, 10.2110/palo.2012.p12-096r Popova, 2017, Cenozoic vegetation gradients in the mid-and higher latitudes of Central Eurasia and climatic implications, Palaeogeogr. Palaeoclimatol. Palaeoecol., 467, 69, 10.1016/j.palaeo.2016.09.016 Popova, 2019, Dynamics and evolution of Turgay-type vegetation in Western Siberia throughout the early Oligocene to earliest Miocene—a study based on diversity of plant functional types in the carpological record, J. Syst. Evol., 57, 129, 10.1111/jse.12420 Qiu, 2005, Evolution of Chinese mammalian faunal regions and elevation of the Qinghai–Xizang (Tibet) Plateau, Sci. China Ser. D Earth Sci., 48, 1246, 10.1360/03yd0523 Qu, 1993, Characteristic and its geological significance of the palynological assemblege of the Lower Tertiary Genjiajie Group in Fushun Basin, J. Changchun U. Earth Sci., 23, 411 Quan, 2012, Paleogene temperature gradient, seasonal variation and climate evolution of Northeast China, Palaeogeogr. Palaeoclimatol. Palaeoecol., 313, 150, 10.1016/j.palaeo.2011.10.016 Quan, 2012, Eocene monsoon prevalence over China: a paleobotanical perspective, Palaeogeogr. Palaeoclimatol. Palaeoecol., 365–366, 302, 10.1016/j.palaeo.2012.09.035 Quan, 2014, Revisiting the Paleogene climate pattern of East Asia: a synthetic review, Earth Sci. Rev., 139, 213, 10.1016/j.earscirev.2014.09.005 Ren, 2018, Genetic Dynamics of China Offshore Cenozoic Basins, Earth Sci., 43, 3337 Rugenstein, 2018, The evolution of hydroclimate in Asia over the Cenozoic: a stable-isotope perspective, Earth Sci. Rev., 185, 1129, 10.1016/j.earscirev.2018.09.003 Scotese Song, 1990, Geological age of the Caomuhao gypsum mine in Oto Banner, Nei Mongol with review of research on fossil proteaceous pollen in China, Acta Palaeobot. Sin., 29, 257 Spicer, 2017, Paleogene monsoons across India and South China: Drivers of biotic change, Gondwana Res., 49, 350, 10.1016/j.gr.2017.06.006 Su, 2020, A Middle Eocene lowland humid subtropical “Shangri-La” ecosystem in Central Tibet, PNAS, 117, 32989, 10.1073/pnas.2012647117 Sun, 2005, How old is the Asian monsoon system? — Palaeobotanical records from China, Palaeogeogr. Palaeoclimatol. Palaeoecol., 222, 181, 10.1016/j.palaeo.2005.03.005 Sun, 1980, Late Cretaceous–Early Tertiary pollen assemblages in Xining–Minhe Basin and its geological age, paleovegitational, and paleoclimatic significance, Pet. Geol. Exp., 2, 44 Sun, 1985, Paleocene–Early Eocene palynological assemblages from the Xiangcheng Group in the Lingbao Basin of Henan, Bull. Inst. Geol. Chin. Acad. Geol. Sci., 11, 127 Sun, 2014, Synchronous turnover of flora, fauna and climate at the Eocene–Oligocene Boundary in Asia, Sci. Rep., 4, 1, 10.1038/srep07463 Tang, 2011, Late Cenozoic central Asian drying inferred from a palynological record from the northern Tian Shan, Earth Planet. Sci. Lett., 302, 439, 10.1016/j.epsl.2010.12.042 Tao, 1965, A late Eocene florula from the district Weinan of central Shensi, Acta Bot. Sin., 13, 272 Tardif, 2020, The origin of Asian monsoons: a modelling perspective, Clim. Past, 16, 847, 10.5194/cp-16-847-2020 Tong, 1987, Sporo-pollen assemblages from the Guanzhuang Formation of the lower Tertiary in the Tailai Basin, Shandong Geol. Significance. L. Resour. Shandong Prov., 3, 40 Utescher, 2007, Eocene vegetation patterns reconstructed from plant diversity—a global perspective, Palaeogeogr. Palaeoclimatol. Palaeoecol., 247, 243, 10.1016/j.palaeo.2006.10.022 Utescher, 2007, Tree diversity in the Miocene forests of Western Eurasia, Palaeogeogr. Palaeoclimatol. Palaeoecol., 253, 226, 10.1016/j.palaeo.2007.03.041 Utescher, 2014, The coexistence approach—theoretical background and practical considerations of using plant fossils for climate quantification, Palaeogeogr. Palaeoclimatol. Palaeoecol., 410, 58, 10.1016/j.palaeo.2014.05.031 Utescher, 2017, Late Miocene vegetation of the Pannonian Basin, Palaeogeogr. Palaeoclimatol. Palaeoecol., 467, 131, 10.1016/j.palaeo.2016.02.042 Utescher, 2021, Diversity patterns in microfloras recovered from Miocene brown coals of the lower Rhine Basin reveal distinct coupling of the structure of the peat-forming vegetation and continental climate variability, Geol. J., 56, 768, 10.1002/gj.3801 Utescher, 2021, Oligocene vegetation of Europe and western Asia—Diversity change and continental patterns reflected by plant functional types, Geol. J., 56, 628, 10.1002/gj.3830 Wang, 2005, Eocene palynostratigraphy of Wutu, Shandong and its stratigraphical significance, J. Stratigr., 29, 22 Wang, 1980, Late Cretaceous–early Paleogene sporopollen assemblages of the Jianghan Basin and their stratigraphical significance, Prof. Paper Chin. Acad. Geol. Sci. (Stratigraphy and Palaeontology), 9, 1 Wang, 1984, The Paleocene–Eocene palynoflora from the Tantou Basin in West Henan, Acta Bot. Sin., 26, 448 Wang, 1986, Palynoflora from late cretaceous to Tertiary in Qinghai and Xinjiang, Bull. Inst. Geol. Chin. Acad. Geol. Sci., 15, 152 Wang, 1987, 1 Wang, 2003, Tertiary palynostratigraphy of the Ningming Basin, Guangxi. J. Stratigr., 27, 324 Wang, 2013, Eocene prevalence of monsoon-like climate over eastern China reflected by hydrological dynamics, J. Asian Earth Sci., 62, 776, 10.1016/j.jseaes.2012.11.032 Wang, 2013, The Eocene climate of China, the early elevation of the Tibetan Plateau and the onset of the Asian Monsoon, Glob. Chang. Biol., 19, 3709, 10.1111/gcb.12336 Wei, 2005, The discovery of the Eocene sporomorphs in the Sharmu Basin, Serxu, western Sichuan, Sediment. Geol. Tethyan Geol., 25, 42 West, 2020, Paleobotanical proxies for early Eocene climates and ecosystems in northern North America from middle to high latitudes, Clim. Past, 16, 1387, 10.5194/cp-16-1387-2020 Westerhold, 2020, An astronomically dated record of Earth’s climate and its predictability over the last 66 million years, Science, 369, 1383, 10.1126/science.aba6853 Westerweel, 2019, Burma Terrane part of the Trans-Tethyan arc during collision with India according to palaeomagnetic data, Nat. Geosci., 12, 863, 10.1038/s41561-019-0443-2 Xie, 2019, Middle Eocene East Asian monsoon prevalence over southern China: evidence from palynological records, Glob. Planet. Chang., 175, 13, 10.1016/j.gloplacha.2019.01.019 Xie, 2020, A major environmental shift by the middle Eocene in southern China: evidence from palynological records, Rev. Palaeobot. Palynol., 278, 104226, 10.1016/j.revpalbo.2020.104226 Xie, 2020, Early Eocene southern China dominated by desert: evidence from a palynological record of the Hengyang Basin, Hunan Province, Glob. Planet. Chang., 195, 103320, 10.1016/j.gloplacha.2020.103320 Ye, 1993 Yu, 1983, Sporo-pollen assemblage of Mao-5 well of Maoming Basin, Guangdong and its geological age, J. Stratigr., 7, 112 Yu, 2003, Geological Implications of Sporopollenites Flora from Tertiary Xining Group in Minhe County, Qinghai Province, Earth Sci. J. China U. Geosci., 28, 401 Yuan, 2017, A late Eocene palynological record from the Nangqian Basin, Tibetan Plateau: Implications for stratigraphy and paleoclimate, Palaeoworld, 26, 369, 10.1016/j.palwor.2016.10.003 Zhang, 1981, Paleocene sporopollen assemblages in the Nanxiong Basin Guangdong Province, Bull. Yichang Inst. Geol. MR, Chinese Acad. Geol. Sci. Sp. Iss. SP, 106 Zhang, 1981, Tertiary spores and pollen grains from the Leizhou Peninsula, Acta Palaeontol. Sin., 20, 449 Zhang, 1992, Eocene palynofloras from the Dainan and Sanduo formations in north Jiangsu with special reference to Eocene climatic changes in southeast China, Acta Micropalaeontol. Sin., 9, 1 Zhang, 2005, Sporopollen assemblage from the Shahejie Formation in the Tanhai area of Huanghua depression, J. Northwest Univ. (Nat. Sci. Ed.), 35, 91 Zhang, 1986, Discovery of the Huadian Fauna of the early Tertiary and its geological significance, Jilin Geol., 4, 1 Zhang, 1987, Pollen assemblages from Hunchun Coalmine of Hunchun, Jilin Province and its paleovegetational and paleoclimatic significance, Coal Geol. Explor., 1, 18 Zhang, 1990, Eocene palynoflora from the south-western continental shelf basin of the East China Sea, Acta Micropalaeontol. Sin., 7, 389 Zhang, 2004, Western Qinling-Songpan continental tectonic node in China's continental tectonics, Earth Sci. Front., 11, 23 Zhang, 2010, Eocene–Miocene palynological assemblages in Wanchang area of Jilin and their stratigraphic significance, Global Geol., 29, 357 Zhang, 2012, Early Eocene Asian climate dominated by desert and steppe with limited monsoons, J. Asian Earth Sci., 44, 24, 10.1016/j.jseaes.2011.05.013 Zhang, 2019, The evolution of latitudinal temperature gradients from the latest cretaceous through the present, Earth Sci. Rev., 189, 147, 10.1016/j.earscirev.2019.01.025 Zhao, 1982, Tertiary sporopollen assemblages from Shache and Kuche Basin, Xinjiang, Bull. Inst. Geol. Chin. Acad. Geol. Sci., 4, 95 Zhao, 2015, Significance of Eocene–Oligocene transition pollen record from Xining Basin, China, Quat. Sci., 35, 1489 Zhu, 1985, 1