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◆ Environmental science. Processes & impacts2026-08-10

Calcium isotope variations in the upper Yangtze River: evidence for the control of secondary carbonate formation.

Jintai Tao, Xing Chen, Fazhi Xie

原始摘要(英文原文)· Original abstract
Calcium (Ca) isotopes are increasingly recognized as sensitive tracers of chemical weathering and carbonate formation, yet the controls on riverine δ44/40Ca remain poorly constrained in large mountainous catchments. Here, we investigated dissolved Ca sources and isotopic behavior in the upper Yangtze River by comparing high-altitude and low-altitude sub-basins during the low-flow season. The δ44/40Ca values ranged from 0.74‰ to 0.98‰ in high-altitude regions (mean = 0.86‰) and from 0.77‰ to 0.87‰ in low-altitude regions (mean = 0.83‰), both within the global riverine range and showing only a small, statistically insignificant difference between altitude groups. Inversion modeling showed that carbonate weathering dominated dissolved Ca in low-altitude regions (20-89%, mean 60%), whereas high-altitude waters displayed more variable source contributions, with carbonate weathering contributing 15-80%, evaporite dissolution 6-53%, and silicate weathering 7-47%. Although source proportions were correlated with δ44/40Ca, conservative mixing remains an important control and cannot be fully excluded for all samples; secondary carbonate formation is therefore interpreted as a possible additional influence superimposed on source mixing. In high-altitude regions, δ44/40Ca was positively correlated with both Sr/Ca and Mg/Ca, consistent with possible preferential removal of light Ca isotopes during carbonate precipitation. In low-altitude regions, δ44/40Ca remained positively correlated with Sr/Ca, whereas the relationship with Mg/Ca was weak, suggesting stronger fractionation under longer water-rock interaction and slower flow conditions. Monte Carlo uncertainty propagation shows that the apparent α values for the high- and low-altitude groups are not statistically distinguishable within uncertainty. These results suggest that altitude-related hydrogeochemical settings modulate riverine Ca isotope behavior through combined effects of source mixing and possible secondary carbonate formation. This study demonstrates that altitude-driven hydrogeochemical variations govern riverine Ca isotope dynamics in the upper Yangtze, offering a robust tool for tracing secondary carbonate precipitation and quantifying carbonate weathering-related carbon fluxes in large river basins.
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Calcium isotope variations in the upper Yangtze River: evidence for the control of secondary carbonate formation. — 科研速览 Science Skim