Low geomagnetic field strength during End-Cretaceous Deccan volcanism and whole mantle convection

Abstract Knowledge about long-term variation of the geomagnetic dipole field remains in its nascent stage because of the paucity of reliable experimental data over geological periods. Here, we present the first robust experimental data from the largest Cretaceous flood basalt province on Earth, the...

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Main Authors: Radhakrishna T., Asanulla R. Mohamed, Venkateshwarlu M., Soumya G. S.
Format: Article
Language:English
Published: Nature Publishing Group 2020-07-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-020-67245-6
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spelling doaj-a5ee85566fd943c3958cbc97c6e7e9f22021-07-04T11:22:25ZengNature Publishing GroupScientific Reports2045-23222020-07-011011610.1038/s41598-020-67245-6Low geomagnetic field strength during End-Cretaceous Deccan volcanism and whole mantle convectionRadhakrishna T.0Asanulla R. Mohamed1Venkateshwarlu M.2Soumya G. S.3National Centre for Earth Science StudiesNational Centre for Earth Science StudiesCSIR-National Geophysical Research InstituteNational Centre for Earth Science StudiesAbstract Knowledge about long-term variation of the geomagnetic dipole field remains in its nascent stage because of the paucity of reliable experimental data over geological periods. Here, we present the first robust experimental data from the largest Cretaceous flood basalt province on Earth, the ~65–66 Ma Deccan basalt within a thick (1250 m) unbiased stratigraphic section down to the basement, recovered from a drill hole of the Koyna Deep Scientific Drilling Project in the Western Ghats, India. Critical analysis of the result along with similar results of the Cretaceous age find that (i) the dipole moment during the end Cretaceous Deccan eruption is the lowest in whole of Cretaceous (ii) dipole moment at the onset/termination of the Cretaceous Normal Superchron is apparently lower relative to that in mid-superchron, however, such differences cannot be deciphered in shorter polarities probably because of insufficient time to develop recognizable variations (iii) inverse relation between dipole moment and reversal rate is lacking and (iv) a cause and effect relation between core-mantle boundary heat flux and low dipole moment that appears to be the principle governing factor in forming the Large Igneous Provinces on the surface of earth.https://doi.org/10.1038/s41598-020-67245-6
collection DOAJ
language English
format Article
sources DOAJ
author Radhakrishna T.
Asanulla R. Mohamed
Venkateshwarlu M.
Soumya G. S.
spellingShingle Radhakrishna T.
Asanulla R. Mohamed
Venkateshwarlu M.
Soumya G. S.
Low geomagnetic field strength during End-Cretaceous Deccan volcanism and whole mantle convection
Scientific Reports
author_facet Radhakrishna T.
Asanulla R. Mohamed
Venkateshwarlu M.
Soumya G. S.
author_sort Radhakrishna T.
title Low geomagnetic field strength during End-Cretaceous Deccan volcanism and whole mantle convection
title_short Low geomagnetic field strength during End-Cretaceous Deccan volcanism and whole mantle convection
title_full Low geomagnetic field strength during End-Cretaceous Deccan volcanism and whole mantle convection
title_fullStr Low geomagnetic field strength during End-Cretaceous Deccan volcanism and whole mantle convection
title_full_unstemmed Low geomagnetic field strength during End-Cretaceous Deccan volcanism and whole mantle convection
title_sort low geomagnetic field strength during end-cretaceous deccan volcanism and whole mantle convection
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2020-07-01
description Abstract Knowledge about long-term variation of the geomagnetic dipole field remains in its nascent stage because of the paucity of reliable experimental data over geological periods. Here, we present the first robust experimental data from the largest Cretaceous flood basalt province on Earth, the ~65–66 Ma Deccan basalt within a thick (1250 m) unbiased stratigraphic section down to the basement, recovered from a drill hole of the Koyna Deep Scientific Drilling Project in the Western Ghats, India. Critical analysis of the result along with similar results of the Cretaceous age find that (i) the dipole moment during the end Cretaceous Deccan eruption is the lowest in whole of Cretaceous (ii) dipole moment at the onset/termination of the Cretaceous Normal Superchron is apparently lower relative to that in mid-superchron, however, such differences cannot be deciphered in shorter polarities probably because of insufficient time to develop recognizable variations (iii) inverse relation between dipole moment and reversal rate is lacking and (iv) a cause and effect relation between core-mantle boundary heat flux and low dipole moment that appears to be the principle governing factor in forming the Large Igneous Provinces on the surface of earth.
url https://doi.org/10.1038/s41598-020-67245-6
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AT venkateshwarlum lowgeomagneticfieldstrengthduringendcretaceousdeccanvolcanismandwholemantleconvection
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