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March 12, 2026Water Resources Research0 citationsOpen Access

Model‐Based Interpretation of Solute Exports and Carbon Partitioning During Shale Weathering in a Mountainous Hillslope

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LSLucien StolzeDDD. K. DwivediCSC. I. Steefel

Key Points

  • This research aims to quantify the contributions of various biogeochemical mechanisms to solute export and carbon fluxes during shale weathering.
  • Implemented a numerical multidimensional and multiphase model
  • Simulated coupled hydrological and biogeochemical processes
  • Studied the effects of seasonal snowmelt on shale weathering dynamics
  • Seasonal snowmelt enhances carbonate weathering by increasing CO2-rich water infiltration
  • Shale weathering acts as a transient carbon sink, buffering acidity and consuming 1% of soil-derived CO2
  • Exported dissolved inorganic carbon is predominantly geogenic at approximately 73%
  • Oxidation of pyrite and organic carbon releases about 0.9 mol·m−2·yr−1 of CO2

Abstract

Abstract The weathering of sedimentary rocks in high‐elevation catchments influences freshwater quality and the global carbon cycle. While individual biogeochemical mechanisms involved in this process are relatively well understood, quantifying their contributions to solute export and carbon fluxes under natural, transient conditions remains challenging. Here, we implement a numerical multidimensional and multiphase model to simulate coupled hydrological and biogeochemical processes in a shale‐underlain, snow‐dominated hillslope in the Rocky Mountains, Colorado. The model captures the dynamic interplay between soil respiration, mineral weathering, and climate‐driven hydrological forcing, reproducing observed soil CO 2 dynamics, groundwater chemistry, and subsurface flow. Our results reveal that seasonal snowmelt enhances carbonate weathering by promoting the infiltration of CO 2 ‐rich water to depth, while pyrite oxidation is primarily sensitive to low water saturation that facilitates O 2 diffusion through the regolith. Topography modulates the spatial distribution of shale weathering, as steeper slopes enhance lateral drainage, favoring the delivery of reactants to greater depths. While shale weathering at our site acts as a transient carbon sink, with silicates and carbonates buffering acidity and promoting atmospheric CO 2 consumption (1% of soil‐derived CO 2 ), the exported dissolved inorganic carbon is predominantly geogenic (∼73%). Consequently, when accounting for long‐term marine carbonate precipitation. The current weathering regime represents a net source of carbon to the atmosphere. The oxidation of pyrite and petrogenic organic carbon together release approximately 0.9 mol·m −2 ·yr −1 of CO 2 . Our findings highlight the role of topography, hydroclimate, and the coupling between acid‐base reactions in shaping the carbon balance and the solute exports in mountainous critical zones.

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Cite This Study

Stolze et al. (2026) studied this question.

synapsesocial.com/papers/69b25b4996eeacc4fcec9d62https://doi.org/10.1029/2025wr041597
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