TY - JOUR
T1 - Speculations on the Paleozoic legacy of Gondwana amalgamation
AU - Brendan Murphy, J.
AU - Damian Nance, R.
AU - Johnston, Stephen T.
AU - Casas, Josep M.
AU - Cawood, Peter A.
AU - Matheson, Edward J.
AU - Pufahl, Peir K.
AU - Dan, Wei
AU - Javier Álvaro, J.
AU - Heron, Philip J.
AU - Strachan, Rob A.
N1 - Funding Information:
JBM, STJ, PKP and PJH are grateful for the continuing support of NSERC , Canada. PAC acknowledges support from Australian Research Council grant FL160100168 . RDN acknowledges support from Czech Operational Programme Research, Development and Education, project no. CZ.02.2.69/0.0/0.0/16_015/0002362. JMC and JJA acknowledge support from PID2021-122467NB-C22 and PID2021-125585NB-I00 projects from the Ministerio de Ciencia, Innovación y Universidades / Agencia Estatal de Investigación / Fondo Europeo de Desarrollo Regional (FEDER), EU. STJ, JMC and RAS acknowledge the support of the James Chair for Pure and Applied Sciences, St. Francis Xavier University . EJM acknowledges support from NSERC Canada through a postdoctoral fellowship. We thank S. Oriolo for his constructive and insightful review and M. Santosh for editorial handling and Randy Corney for technical assistance.
Funding Information:
JBM, STJ, PKP and PJH are grateful for the continuing support of NSERC, Canada. PAC acknowledges support from Australian Research Council grant FL160100168. RDN acknowledges support from Czech Operational Programme Research, Development and Education, project no. CZ.02.2.69/0.0/0.0/16_015/0002362. JMC and JJA acknowledge support from PID2021-122467NB-C22 and PID2021-125585NB-I00 projects from the Ministerio de Ciencia, Innovación y Universidades/Agencia Estatal de Investigación/Fondo Europeo de Desarrollo Regional (FEDER), EU. STJ, JMC and RAS acknowledge the support of the James Chair for Pure and Applied Sciences, St. Francis Xavier University. EJM acknowledges support from NSERC Canada through a postdoctoral fellowship. We thank S. Oriolo for his constructive and insightful review and M. Santosh for editorial handling and Randy Corney for technical assistance.
Publisher Copyright:
© 2023
PY - 2024/5
Y1 - 2024/5
N2 - Using Gondwana as an example, we show how the geological record can be interrogated to detect significant changes in mantle convection patterns at critical junctures in Earth's evolution. Evidence of major changes in mantle circulation in the aftermath of late Neoproterozoic-early Paleozoic Gondwana assembly is provided by widespread (i) plume-related magmatism around Gondwana's periphery, (ii) ironstone deposits related to mantle plume-ocean ridge interaction and enhanced hydrothermal activity, and (iii) super-mature clastic deposits that reflect epeirogenic uplift triggered by mantle upwelling beneath Gondwana combined with deep tropical weathering. In our model, Gondwana assembled above a region of mantle downwelling in which subducted slabs between the converging Gondwanan continents descended to the core-mantle boundary. Renewed subduction along Gondwana's periphery yielded early arc magmas. But as downwelling beneath Gondwana evolved into upwelling as a result of the ponding of subducted slabs at the base of the mantle, mantle plumes rose from the margins of the nascent upwelling to interact with the edges of Gondwana, where they penetrated the peripheral subduction zones via slab windows, tears and transform faults to generate voluminous calc-alkalic crustal melts in hydrated arc regions and A-type magmas in dry back-arc regions. The plumes also underplated oceanic lithosphere and interacted with adjacent ocean ridges, thereby enhancing hydrothermal activity and the flux of bioessential nutrients, leading to the recurrence of marine iron-rich sedimentary rocks in the geological record. At the same time, upwelling beneath a tropical to equatorial Gondwana led to epeirogenic uplift, deep weathering and erosion, resulting in the production of widespread super-mature clastic deposits. We contend that major changes in mantle convection patterns were encoded into the geological record of Gondwana assembly, influenced global-scale mantle convection patterns, and should be incorporated into geodynamic models for the assembly of Pangea.
AB - Using Gondwana as an example, we show how the geological record can be interrogated to detect significant changes in mantle convection patterns at critical junctures in Earth's evolution. Evidence of major changes in mantle circulation in the aftermath of late Neoproterozoic-early Paleozoic Gondwana assembly is provided by widespread (i) plume-related magmatism around Gondwana's periphery, (ii) ironstone deposits related to mantle plume-ocean ridge interaction and enhanced hydrothermal activity, and (iii) super-mature clastic deposits that reflect epeirogenic uplift triggered by mantle upwelling beneath Gondwana combined with deep tropical weathering. In our model, Gondwana assembled above a region of mantle downwelling in which subducted slabs between the converging Gondwanan continents descended to the core-mantle boundary. Renewed subduction along Gondwana's periphery yielded early arc magmas. But as downwelling beneath Gondwana evolved into upwelling as a result of the ponding of subducted slabs at the base of the mantle, mantle plumes rose from the margins of the nascent upwelling to interact with the edges of Gondwana, where they penetrated the peripheral subduction zones via slab windows, tears and transform faults to generate voluminous calc-alkalic crustal melts in hydrated arc regions and A-type magmas in dry back-arc regions. The plumes also underplated oceanic lithosphere and interacted with adjacent ocean ridges, thereby enhancing hydrothermal activity and the flux of bioessential nutrients, leading to the recurrence of marine iron-rich sedimentary rocks in the geological record. At the same time, upwelling beneath a tropical to equatorial Gondwana led to epeirogenic uplift, deep weathering and erosion, resulting in the production of widespread super-mature clastic deposits. We contend that major changes in mantle convection patterns were encoded into the geological record of Gondwana assembly, influenced global-scale mantle convection patterns, and should be incorporated into geodynamic models for the assembly of Pangea.
KW - Arc-plume interaction
KW - Gondwana assembly and mantle convection
KW - Ironstone deposits
KW - Mantle plumes along Gondwana periphery
KW - Super-mature clastic deposits
UR - https://www.scopus.com/pages/publications/85183755406
U2 - 10.1016/j.gr.2023.12.002
DO - 10.1016/j.gr.2023.12.002
M3 - Article
AN - SCOPUS:85183755406
SN - 1342-937X
VL - 129
SP - 107
EP - 131
JO - Gondwana Research
JF - Gondwana Research
ER -