Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/38371
Appears in Collections:Biological and Environmental Sciences Journal Articles
Peer Review Status: Refereed
Title: A lightweight deepwater oxygen model for investigating lake responses to future climate
Author(s): Yaghouti, Mahtab
Ayala, Ana I
Mesman, Jorrit P
Pierson, Don C
Shatwell, Tom
Nkwalale, Lipa G T
Rinke, Karsten
Shi, Haoran
Jennings, Eleanor
Hunter, Peter
Woolway, R Iestyn
Jones, Ian D
Contact Email: mahtab.yaghouti@stir.ac.uk
Keywords: Deepwater oxygen
Future projections
Climate change
Management framework
Oxygen stability
Lake Erken
Issue Date: May-2026
Date Deposited: 19-Sep-2026
Citation: Yaghouti M, Ayala AI, Mesman JP, Pierson DC, Shatwell T, Nkwalale LGT, Rinke K, Shi H, Jennings E, Hunter P, Woolway RI & Jones ID (2026) A lightweight deepwater oxygen model for investigating lake responses to future climate. <i>Environmental Modelling & Software</i>, 200, Art. No.: 106941. https://doi.org/10.1016/j.envsoft.2026.106941
Abstract: Climate-driven deepwater deoxygenation is a growing global concern for lake ecosystems. We developed a simple 1-D deepwater oxygen profile model to understand the underlying physical mechanisms and to quantify the required climate-adaptive interventions. It was applied to Lake Erken, Sweden, using hydrodynamic forcing under three Representative Concentration Pathway (RCP) scenarios. From 2020 to 2099, the annual anoxic factor (the number of days when the anoxic sediment area equals the lake surface area) projections show non-significant trends under RCP2.6, while increasing by 0.4 and 0.6 days year−1 decade−1 under RCP6.0 and RCP8.5, respectively. This climate-driven future deoxygenation, consistent across multiple oxygen metrics, mainly stems from prolonged stratification. To mitigate climate impacts by 2100, oxygen depletion rates, as a proxy for eutrophication, would need to be reduced by approximately 9–13%, 20–24% and 26–35% under RCP2.6, RCP6.0 and RCP8.5, respectively. This data-efficient framework can be applied to physically-dominated, seasonally stratified lakes.
DOI Link: 10.1016/j.envsoft.2026.106941
Rights: This is an open access article distributed under the terms of the Creative Commons CC-BY license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. You are not required to obtain permission to reuse this article.
Licence URL(s): http://creativecommons.org/licenses/by/4.0/

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