Paleomagnetic evidence for mineralizing fluid flow events in the Uragen super-large Pb-Zn deposit, Wuqia County, Xinjiang, Northwest China

Widespread chemical remagnetization may preserve signatures of paleofluid migration, yet decoding these signals into high-resolution tracers remains challenging. Focusing on the southern Uragen Pb-Zn belt in Wuqia County, Xinjiang, Northwest China, this study integrated thermal demagnetization, rock magnetism, and paleomagnetism to isolate two remagnetization components (A and B) and trace multi-stage fluid events and possible migration pathways. The results reveal that Component A yielded a mean direction of Ds = 5.8°, Is = 59.9° (κ = 173, α95 = 2.4°), corresponding to a paleopole at 85.4°N, 149.1°E. This component records a late Eocene (ca. 40–35 Ma) hydrocarbon-brine charge and alteration event. Component B yielded a mean direction of Ds = 9.3°, Is = 62.3° (κ = 379.3, α95 = 2.2°), with a corresponding paleopole at 82.0°N, 132.5°E, indicating fluid activity during the late stage of main mineralization and diagenesis in the early to middle Eocene (ca. 50–45 Ma). Triggered by the far-field effects of the India–Eurasia collision, deep-reducing fluids migrated upward along reactivated faults and laterally through highly permeable sandstones. These fluids reduced Fe3+ in oxidized red beds, precipitating fine-grained secondary magnetite and causing widespread remagnetization. Furthermore, by utilizing the spatial gradient in Component A’s relative abundance as a proxy, we traced hydrothermal fluid pathways. A distinct attenuation gradient reveals that basinal hydrocarbon brines upwelled from the deep southwest and migrated progressively northeastward within Kezilesu Group reservoirs. These results suggest a fluid migration regime likely dominated by stratabound lateral flow and episodic vertical transport along faults. Elevating remagnetization from solely a chronological marker to a spatial fluid tracer, this study offers a novel approach for tracking deep-seated fluids in sedimentary basins and evaluating concealed fluid pathways potentially related to mineralization.

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Journal
Geological Society of America Bulletin
Published
2026-09-15
DOI
https://doi.org/10.1130/b38927.1
Primary Topic
Geomagnetism and Paleomagnetism Studies
Type
article
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article

Paleomagnetic evidence for mineralizing fluid flow events in the Uragen super-large Pb-Zn deposit, Wuqia County, Xinjiang, Northwest China

Yaxiaer Yalikun, Bowen Zhang, Yilihamujiang Tuniyazi, Matthew J. Brzozowski et al.
Geological Society of America Bulletin
Geomagnetism and Paleomagnetism Studies
article

Paleomagnetic evidence for mineralizing fluid flow events in the Uragen super-large Pb-Zn deposit, Wuqia County, Xinjiang, Northwest China

Yaxiaer Yalikun, Bowen Zhang, Yilihamujiang Tuniyazi, Matthew J. Brzozowski, Yuxiang Zhao, Chaoyu Wei, Pengyu Wei
article en

Abstract

Widespread chemical remagnetization may preserve signatures of paleofluid migration, yet decoding these signals into high-resolution tracers remains challenging. Focusing on the southern Uragen Pb-Zn belt in Wuqia County, Xinjiang, Northwest China, this study integrated thermal demagnetization, rock magnetism, and paleomagnetism to isolate two remagnetization components (A and B) and trace multi-stage fluid events and possible migration pathways. The results reveal that Component A yielded a mean direction of Ds = 5.8°, Is = 59.9° (κ = 173, α95 = 2.4°), corresponding to a paleopole at 85.4°N, 149.1°E. This component records a late Eocene (ca. 40–35 Ma) hydrocarbon-brine charge and alteration event. Component B yielded a mean direction of Ds = 9.3°, Is = 62.3° (κ = 379.3, α95 = 2.2°), with a corresponding paleopole at 82.0°N, 132.5°E, indicating fluid activity during the late stage of main mineralization and diagenesis in the early to middle Eocene (ca. 50–45 Ma). Triggered by the far-field effects of the India–Eurasia collision, deep-reducing fluids migrated upward along reactivated faults and laterally through highly permeable sandstones. These fluids reduced Fe3+ in oxidized red beds, precipitating fine-grained secondary magnetite and causing widespread remagnetization. Furthermore, by utilizing the spatial gradient in Component A’s relative abundance as a proxy, we traced hydrothermal fluid pathways. A distinct attenuation gradient reveals that basinal hydrocarbon brines upwelled from the deep southwest and migrated progressively northeastward within Kezilesu Group reservoirs. These results suggest a fluid migration regime likely dominated by stratabound lateral flow and episodic vertical transport along faults. Elevating remagnetization from solely a chronological marker to a spatial fluid tracer, this study offers a novel approach for tracking deep-seated fluids in sedimentary basins and evaluating concealed fluid pathways potentially related to mineralization.

Geological Society of America Bulletin
Chang'an University (CN), Continental (United Kingdom) (GB), Bureau of Geology and Mineral Exploration and Development of Guizhou Province (CN)
Openalex Percentile: Top 18%
Geomagnetism and Paleomagnetism Studies
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