Decoding the tectonomagmatic evolution of the Ladakh Magmatic Arc, NW Himalaya: A multi-proxy geochemical and isotopic approach

IF 12.7 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY
Geoscience frontiers Pub Date : 2026-05-01 Epub Date: 2026-01-18 DOI:10.1016/j.gsf.2026.102260
Irfan M. Bhat , H. Chauhan , T. Ahmad , T. Tanaka , Tehseen Zafar , Y. Asahara
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Abstract

Magmatic arcs are the active locus of crustal formation, and their knowledge of spatiotemporal geochemical variation is vital for understanding the evolution of collisional systems. Here, we compare geochemical and isotopic results from the precollisional Dras-Nidar Island Arc Complex (DNIAC), pre- to syn-collisional Ladakh Batholith (LB) that formed the part of the well-known Kohistan-Ladakh Batholith, and post-collisional mafic dykes. It is observed that the long-term magmatic evolution was controlled by the Neo-Tethyan Ocean geodynamics. The Ladakh magmatic arc records three distinct magmatic stages through its geochemical and isotopic evolution. The pre-collisional DNIAC (160–110 Ma) shows tholeiitic to calc-alkaline melts with depleted mantle signatures (εNd > +5 and 87Sr/86Sr < 0.704), transitional to syn-collisional LB granitoids and associated Khardung volcanics (103–45 Ma) reflecting enriched signatures (εNd +2 to −4, 87Sr/86Sr = 0.704–0.708, La/Sm > 3, Th/La > 0.2) due to sediment subduction and crustal assimilation. While post-collisional mafic dykes (< 45 Ma) reflect lithospheric mantle metasomatism (enriching incompatible trace elements including rare earth elements) with limited crustal interaction (εNd +1 to +3). This demonstrates a progressive evolution from a fluid-dominated mantle wedge melting to a sediment-driven crustal influence and finally to an enriched mantle melting, highlighting the critical role of slab dynamics and crustal recycling in continental growth during arc-continent collision. Thus, we concluded that the contribution from the sediment subduction is more pronounced in the KLB compared to the DNIAC.

Abstract Image

岩浆弧是地壳形成的活动场所,其时空地球化学变化对认识碰撞系统演化具有重要意义。观察发现,长期的岩浆演化受新特提斯海洋地球动力学的控制。碰撞前的DNIAC (160 ~ 110 Ma)表现为拉斑-钙碱性熔体,地幔特征(εNd >; +5和87Sr/86Sr <; 0.704)减弱,过渡到同碰撞LB花岗岩类和伴生的卡东火山(103 ~ 45 Ma),由于沉积物俯冲和地壳同化作用,反映出富集特征(εNd +2 ~−4,87Sr/86Sr = 0.704 ~ 0.708, La/Sm > 3, Th/La > 0.2)。碰撞后基性岩脉(< 45 Ma)反映岩石圈地幔交代作用(富集不相容微量元素,包括稀土元素),地壳相互作用有限(εNd +1 ~ +3)。这表明了从流体主导的地幔楔体熔融到沉积驱动的地壳影响,最后到富集的地幔熔融的渐进演化过程,突出了弧-陆碰撞过程中板块动力学和地壳再循环在大陆生长过程中的关键作用。因此,我们得出结论,与DNIAC相比,沉积物俯冲作用在KLB中的贡献更为明显。
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来源期刊
Geoscience frontiers
Geoscience frontiers Earth and Planetary Sciences-General Earth and Planetary Sciences
CiteScore
17.80
自引率
3.40%
发文量
147
审稿时长
35 days
期刊介绍: Geoscience Frontiers (GSF) is the Journal of China University of Geosciences (Beijing) and Peking University. It publishes peer-reviewed research articles and reviews in interdisciplinary fields of Earth and Planetary Sciences. GSF covers various research areas including petrology and geochemistry, lithospheric architecture and mantle dynamics, global tectonics, economic geology and fuel exploration, geophysics, stratigraphy and paleontology, environmental and engineering geology, astrogeology, and the nexus of resources-energy-emissions-climate under Sustainable Development Goals. The journal aims to bridge innovative, provocative, and challenging concepts and models in these fields, providing insights on correlations and evolution.
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