Modelling the impact of increasing dissolved organic carbon load on seasonal anoxia in a boreal humic lake.

French Title: Modélisation de l'impact de l'augmentation des apports en carbon organique dissous sur l'anoxie saisonnière dans un lac boreal humique.

Raoul-Marie Couture1,2, Heleen De Wit1, Koji Tominaga3, Petri Kiuru4 and Igor Markelov2, (1)Norwegian Institute for Water Research, Catchment processes, Oslo, Norway, (2)University of Waterloo, Earth and Environmental Sciences, Waterloo, ON, Canada, (3)University of Oslo, Biosciences, Oslo, Norway, (4)Finnish Environment Institute, Freshwater Centre, Jyväskylä, Finland

Contact First Author: Raoul-Marie Couture; rmc@niva.no

Previously Published Material: Under review in Journal of Geophysical Research: Biogeosciences

Abstract ID#: 33562

 

English Abstract:
Boreal lakes are impacted by climate change, reduced acid deposition and changing loads of dissolved organic carbon (DOC) from the catchment. We set to explore how these changes, in particular the increasing DOC load, modulate ice phenology and dissolved oxygen (DO) of a boreal humic lake located in southeastern Norway. Observed trends in daily air temperature (+0.045 oC yr-1) and weekly DOC concentration (0.1 mg C yr-1, +1% annually) measured over the past 40 years at the study site were used as forcings for the lake model MyLake. The model was parametrized against year-round time-series of water temperature and DO from a high-frequency lake buoy. A backcast of ice freezing and break-up dates to 1974 reveals that ice break-up occurs on average 8 days earlier in 2014 than in 1974. An earlier ice break-up enhances water column ventilation, resulting in higher DO in the spring. Later in the season, warmer water in late summer lead to longer anoxic periods, as microbial DOC turnover increases. Long-term increase in DOC concentrations causes decline in lake DO, leading to 15% more hypoxic days (< 3 mg L-1) and 10% more anoxic days (< 15 ug L-1) in 2014 than in 1974. We conclude that climate warming and increasing DOC loads are antagonistic with respect to their effect on DO availability. The model suggests that DOC is a stronger driver of DO consumption than temperature. DOC increase thus has the potential to reduce the oxythermal habitat of fish and aquatic biota in boreal lakes.