Architecture of lacustrine deposits in response to early Carboniferous rifting and Gondwanan glaciation, Nova Scotia, south‐east Canada

Author:

Tang Wenbin1ORCID,Pe‐Piper Georgia2ORCID,Piper David J. W.34ORCID,Chen Anqing1ORCID,Hou Mingcai1,Guo Zhaojie5,Zhang Yuanyuan5

Affiliation:

1. State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation/Institute of Sedimentary Geology Chengdu University of Technology Chengdu 610059 China

2. Department of Geology Saint Mary's University Halifax Nova Scotia B3H 3C3 Canada

3. Natural Resources Canada, Geological Survey of Canada (Atlantic) Bedford Institute of Oceanography Dartmouth Nova Scotia B2Y 4A2 Canada

4. Department of Oceanography Dalhousie University Halifax Nova Scotia B3H 4R2 Canada

5. School of Earth and Space Science Peking University Beijing 100871 China

Abstract

AbstractUpper Palaeozoic lacustrine basin deposits not only record local tectonism but are also an archive to evaluate global palaeoclimate changes linked to the Late Palaeozoic Gondwanan ice age. The Tournaisian Horton Group of Nova Scotia, south‐east Canada, accumulated in rift basins following the final accretion of peri‐Gondwanan terranes to the Appalachians. Sedimentology, mineralogy and geochemistry of the well‐exposed sandstones and shales at the classic Blue Beach section (ca 353.5 to 352 Ma) reveal the interplay of local tectonism and global climatic controls on lacustrine sedimentation. The lacustrine depositional environment gradually transitioned from deep water offshore at the base of the section to wave‐dominated and fluvial‐dominated nearshore at the top. Multiple small transgressive–regressive sedimentation cycles have an average 21 ka duration, likely related to Milankovitch cyclicity. Unusually abundant soft‐sediment deformation structures and landslides are the sedimentary responses to frequent earthquakes during the most active phase of rift subsidence. The overall succession shows changes from a shallowing‐up balanced‐filled to an overfilled lacustrine basin. The chemical weathering intensity index and the Th/K ratio show a longer‐term trend from dry and cool conditions low in the section to humid and warm conditions near the top, with rapid change in the transition period. The section records the peak of the global mid‐Tournaisian carbon isotope excursion and the corresponding cooling event (354 Ma to approximately 351 Ma). The sedimentary succession is a response to long‐term and short‐term climatic cycles influencing lake level and sediment supply during the time of maximum rift basin subsidence recorded by the soft‐sediment deformation structures.

Funder

China Scholarship Council

National Natural Science Foundation of China

Publisher

Wiley

Subject

Stratigraphy,Geology,General Medicine

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