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Carboniferous and Early Permian Magmatism in England

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posted on 2025-09-05, 09:52 authored by Thomas C Sheldrick, Gregor Hahn, Paula M Antoshechkina, Michael J Norry, Stuart S Egan, Tiffany BarryTiffany Barry, Chengshi Gan, Camilla M Wilkinson, Sally A Gibson, Callum A Ewan
<p dir="ltr">The cause of widespread Carboniferous and Early Permian magmatism that occurred across Northern Europe and the UK remains enigmatic. New 40Ar-39Ar radiometric dating reveals that some of the earliest manifestations of alkaline to sub-alkaline magmatism, found near the southern limit of the province in the Peak District of Central England (Waterswallows Sill: 328.6 ± 4.2 Ma; Calton Hill: 316.4 ± 3.7 Ma), coincided with episodes of extensional and thermal subsidence. The variable geochemical compositions, changing tectonics, and geographic location of the Peak District rocks provide opportunity to understand regional magmatic processes. A combination of geodynamic and geochemical modelling is done using new whole-rock major- and trace-element data, and Sr–Nd–Pb isotope results. To aid comparison, new geochemical data are also provided for the magmatism in Scotland and for the younger Whin Complex in Northern England (ca. 297 Ma). Due to different amounts of partial melting, olivine assimilation, and post-magmatic alteration, a new type of data visualization—the compatible element plot—is devised to aid interpretation. Given the shape of REE patterns, together with the Sc and V contents, it indicates melting took place within the garnet stability field. Geodynamic modelling of the Derbyshire carbonate platform and Edale Basin calculated a low β-value (~1.1) for a uniform extensional regime. However, the Caledonian and Acadian orogenies may have made the deep lithosphere beneath Britain unstable, promoting later founding and asthenospheric upwelling. To help with discussion on this scenario, a non-uniform lithospheric extension model is presented with a β-value of 2. On this basis, an alternative model is introduced, whereby warmer-than-ambient (not hot) fingers of mantle plume under-flow facilitates decompression melting of the asthenosphere during extensional processes. In locations such as Derbyshire, magma ascended to the surface utilizing the deep-seated faults present in asymmetric basins. With such a model, a plume trace or significant doming may not necessarily be obvious but an interplay between tectonics, lithospheric structure and mantle processes is key.</p>

Funding

Yorkshire Geological Society

History

Author affiliation

College of Science & Engineering Geography, Geology & Environment

Published in

Journal of Petrology

Volume

66

Issue

8

Publisher

Oxford University Press (OUP)

issn

0022-3530

eissn

1460-2415

Copyright date

2025

Available date

2025-09-05

Language

en

Deposited by

Dr Tiffany Barry

Deposit date

2025-08-26

Data Access Statement

All the data underlying this article is available in the online supplementary material. New data is also reported via EarthChem, at https://doi.org/10.60520/IEDA/113587 and https://doi.org/10.60520/IEDA/113588. Samples have a unique ID assigned by the System for Earth Sample Registration (SESAR).

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