Mid-Cretaceous desert system in the Simao Basin, southwestern China, and its implications for sea-level change during a greenhouse climate

Author(s)
Chihua Wu, Chenglin Liu, Haisheng Yi, Guoqing Xia, Hua Zhang, Licheng Wang, Gaojie Li, Michael Wagreich
Abstract

Paleoclimatic indicators suggest that the mid-Cretaceous was one of the warmest intervals of the Phanerozoic. The period of the mid-Cretaceous “super-greenhouse” also experienced an equator-to-pole temperature gradient much lower than that of the present day, implying greater meridional heat transport by the atmosphere and/or oceans. However, reconstructions of Cretaceous atmospheric circulation have been hindered by a lack of relevant datasets based on reliable proxies or direct geological evidence. Aeolian deposits provide direct information about paleoclimate, as well as the direction and intensity of paleo-wind in the interiors of continents. Using petrologic and sedimentologic observations, this study reassesses the terrestrial deposits of the mid-Cretaceous Mangang Formation in the Simao Basin of southwestern China. Originally considered to be aqueous deposits, we reinterpret these strata as representing aeolian transport in a desert environment. We suggest that the development of aeolian deposits in the Mangang Formation (and coeval strata in adjacent basins) was a local response to the prevailing desert climate in the mid- to low-latitudes of the Northern Hemisphere during the mid-Cretaceous, which were dominated by subtropical high-pressure systems on a planetary scale. In addition, with the closure of the Mesotethys Ocean, the intermontane basins of the South China, Simao, and Indochina blocks became more isolated from atmospheric circulation. Bidirectional subduction of the Bangong-Nujiang oceanic crust and the Izanagi Plate beneath East Asia led to the development of Andean-type margins, which created a rain-shadow effect in continental East Asia. These factors caused the development of a tropical desert climate, characterized by aeolian dunes and evaporite deposition. We speculate that the severe depletion of groundwater reservoirs via the desertification of East Asia may represent a previously unrecognized trigger for short-term sea-level changes during the ice-free Cretaceous greenhouse interval.

Organisation(s)
Department of Geology
External organisation(s)
Chinese Academy of Geological Sciences, Chengdu University of Technology
Journal
Palaeogeography, Palaeoclimatology, Palaeoecology
Volume
468
Pages
529-544
No. of pages
16
ISSN
0031-0182
DOI
https://doi.org/10.1016/j.palaeo.2016.12.048
Publication date
02-2017
Peer reviewed
Yes
Austrian Fields of Science 2012
105121 Sedimentology, 105112 Historical geology
Keywords
ASJC Scopus subject areas
Earth-Surface Processes, Ecology, Evolution, Behavior and Systematics, Oceanography, Palaeontology
Sustainable Development Goals
SDG 15 - Life on Land, SDG 13 - Climate Action
Portal url
https://ucrisportal.univie.ac.at/en/publications/ba1dfd91-3b50-4521-acfd-3da3ab21f6d2