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March 3, 2026Minerals0 citationsOpen Access

Petrogenesis of the Monzonite in the Jiashan Area, Northern Jiangsu, China: Constraints from Whole-Rock Geochemistry and Zircon U–Pb Ages and Lu–Hf Isotopes

TKTao KangDHDuolikun HainaerPZPeng Zhu

Key Points

  • The monzonite shows a crystallization age of approximately 127 Ma based on zircon U-Pb dating, highlighting a significant geological timeline.
  • Geochemical analysis indicates that the monzonite has a metaluminous character with moderate SiO2 and high alkalis, which aligns with I-type granite characteristics.
  • Zircon Lu-Hf isotopes further reveal negative εHf(t) values, suggesting derivation from ancient Archean crust combined with some mantle influence.
  • The findings support that these intrusions resulted from partial melting processes, influenced by tectonic activity in the region during the Early Cretaceous.

Abstract

Recent discoveries of fluorite–barite deposits in the Donghai–Linshu area in northern Jiangsu Province, China, underscore the region’s mineral potential, yet detailed geological investigations remain limited. In this study, we examined monzonite and quartz monzonite from drill cores in the Jiashan mining area using petrography, U–Pb zircon dating, zircon trace element geochemistry, whole-rock geochemistry, and zircon Lu–Hf isotopes. Laser ablation inductively coupled plasma mass spectrometry (LA–ICP–MS) zircon U–Pb analyses were conducted to constrain the crystallization ages of the monzonite (127.06 ± 0.54 Ma and 126.83 ± 0.75 Ma) and quartz monzonite (127.2 ± 0.5 Ma and 128.59 ± 0.62 Ma) to the Early Cretaceous, marking a significant magmatic event. Many of the zircons contain inherited Neoproterozoic cores (718–760 Ma and 800–860 Ma), indicating the assimilation of deep crustal materials of this age. The monzonite is metaluminous, with moderate SiO2 (61.61–62.41 wt.%), high alkalis (Na2O + K2O = 7.48–7.92 wt.%), and A/CNK = 0.72–0.91. The quartz monzonite has higher SiO2 (66.26–68.18 wt.%) and alkalis (8.32–9.33 wt.%). Both rock types exhibit similar trace and rare earth element patterns: enrichment in large-ion lithophile and light rare earth elements, depletions in Nb, Ta, and Ti, no significant Zr-Hf depletion, and weak negative Eu anomalies (δEu ≈ 0.84–1.00). Their low Zr + Nb + Ce + Y contents, Ga/Al ratios, and TFeO/MgO ratios indicate that they have an I-type granite affinity. The Early Cretaceous zircons have highly negative εHf(t) values (−33.7 to −23.5) and ancient two-stage model ages (2622–3247 Ma), which are consistent with derivation from Archean crust. The inherited Neoproterozoic zircons have younger Paleo–Mesoproterozoic TDM2 ages. The evidence suggests that both intrusions were mainly generated by partial melting of ancient Archean basement, with minor mantle input. The magma generation was likely triggered by crustal anatexis induced by the underplating of mantle-derived magmas in an extensional tectonic regime, coeval with Early Cretaceous magmatism in the Sulu orogen.

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Cite This Study

Kang et al. (2026) studied this question.

synapsesocial.com/papers/69a75b71c6e9836116a22bf7https://doi.org/10.3390/min16020137
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