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September 28, 2025Geophysical Research Letters0 citationsOpen Access

Secondary Plumes Formation Controlled by Interaction of Thermochemical Mantle Plumes With the Mantle Transition Zone

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XZX. ZhuABAttila BalázsTGT. V. Gerya

Key Points

  • The mantle transition zone significantly influences thermochemical plume behavior and surface magmatism.
  • Some plumes ascend directly while others stall, generating secondary upwellings that contribute to localized volcanism.
  • Temperature and compositional heterogeneities affect the transition from plume ascent to stagnation.
  • Understanding these processes provides insights into why certain plumes do not lead to large igneous provinces.

Abstract

Abstract The causes and global distribution of intraplate volcanism remain poorly understood, particularly the occurrence of scattered magmatism unrelated to large igneous provinces (LIPs). In this study, high‐resolution numerical simulations are employed to examine the interaction between deep thermochemical mantle plumes and the mantle transition zone (MTZ) to clarify its role in plume ascent and surface magmatism. Results demonstrate that the MTZ exerts a significant control on plume behavior, with some plumes ascending directly while others stall and generate secondary upwellings (“baby plumes”), which may contribute to scattered, localized magmatism. The transition from direct ascent to stagnation of the primary (“parent”) thermochemical plume is influenced by temperature, plume volume, Clapeyron slopes, and compositional heterogeneities. Our results highlight the crucial role of the MTZ in how mantle plumes evolve and drive surface magmatism. This provides new insights into why some deep mantle plumes fail to generate LIPs, instead producing widely scattered volcanism.

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Cite This Study

Zhu et al. (2025) studied this question.

synapsesocial.com/papers/68d90bc941e1c178a14f71c2https://doi.org/10.1029/2025gl117079
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