Carbon dioxide ((Formula presented.)) fluxes in regulated Alpine rivers are driven by multiple biogeochemical and anthropogenic processes, acting on different spatiotemporal scales. We quantified the relative importance of these drivers and their effects on the dynamics of (Formula presented.) concentration and atmospheric exchange fluxes in a representative Alpine river segment regulated by a cascading hydropower system with diversion, which includes two residual flow reaches and a reach subject to hydropeaking. We combined instantaneous and time-resolved water chemistry and hydraulic measurements at different times of the year, and quantified the main (Formula presented.) fluxes by calibrating a one-dimensional transport-reaction model with measured data. As a novelty compared to previous inverse modeling applications, the model also included carbonate buffering, which contributed significantly to the (Formula presented.) budget of the case study. The spatiotemporal distribution and drivers of (Formula presented.) fluxes depended on hydropower operations. Along the residual flow reaches, (Formula presented.) fluxes were directly affected by the upstream dams only in the first (Formula presented.) 2.5 km, where the supply of supersaturated water from the reservoirs was predominant. Downstream of the hydropower diversion outlets, the (Formula presented.) fluxes were dominated by systematic sub-daily fluctuations in (Formula presented.) transport and evasion fluxes (“carbopeaking”) driven by hydropeaking. Hydropower operational patterns and regulation approaches in Alpine rivers affect (Formula presented.) fluxes and their response to biogeochemical drivers significantly across different temporal scales. Our findings highlight the importance of considering all scales of (Formula presented.) variations for accurate quantification and understanding of these impacts, to clarify the role of natural and anthropogenic drivers in global carbon cycling.

Quantification of Carbopeaking and CO2 Fluxes in a Regulated Alpine River

Dolcetti G.
;
2025

Abstract

Carbon dioxide ((Formula presented.)) fluxes in regulated Alpine rivers are driven by multiple biogeochemical and anthropogenic processes, acting on different spatiotemporal scales. We quantified the relative importance of these drivers and their effects on the dynamics of (Formula presented.) concentration and atmospheric exchange fluxes in a representative Alpine river segment regulated by a cascading hydropower system with diversion, which includes two residual flow reaches and a reach subject to hydropeaking. We combined instantaneous and time-resolved water chemistry and hydraulic measurements at different times of the year, and quantified the main (Formula presented.) fluxes by calibrating a one-dimensional transport-reaction model with measured data. As a novelty compared to previous inverse modeling applications, the model also included carbonate buffering, which contributed significantly to the (Formula presented.) budget of the case study. The spatiotemporal distribution and drivers of (Formula presented.) fluxes depended on hydropower operations. Along the residual flow reaches, (Formula presented.) fluxes were directly affected by the upstream dams only in the first (Formula presented.) 2.5 km, where the supply of supersaturated water from the reservoirs was predominant. Downstream of the hydropower diversion outlets, the (Formula presented.) fluxes were dominated by systematic sub-daily fluctuations in (Formula presented.) transport and evasion fluxes (“carbopeaking”) driven by hydropeaking. Hydropower operational patterns and regulation approaches in Alpine rivers affect (Formula presented.) fluxes and their response to biogeochemical drivers significantly across different temporal scales. Our findings highlight the importance of considering all scales of (Formula presented.) variations for accurate quantification and understanding of these impacts, to clarify the role of natural and anthropogenic drivers in global carbon cycling.
2025
61
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10278/5123019
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