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Updated: Aug 23, 2025

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Modified future diurnal variability of the global surface ocean CO2 system
Lester Kwiatkowski1, Olivier Torres2, Olivier Aumont1
1LOCEAN Laboratory, Sorbonne Université-CNRS-IRD-MNHN, Paris, France.
Global Change Biology
|November 5, 2022
Summary
Ocean carbon dioxide (CO2) diurnal variability is increasing due to climate change. Marine life will face greater metabolic challenges from these CO2 fluctuations in the future.
Area of Science:
- Oceanography
- Climate Science
- Biogeochemistry
Background:
- Increasing atmospheric CO2 and climate change are altering the marine CO2 system and carbonate chemistry variability.
- Seasonal variability in the ocean CO2 system has already changed, with projections indicating further amplification.
- Diurnal variability in the CO2 system, particularly in extreme events, is also expected to be affected by climate change.
Purpose of the Study:
- To modify a global ocean biogeochemical model to resolve diurnal variability in the ocean CO2 system.
- To investigate how surface ocean diurnal variability responds to historical changes and projects future changes under different emission scenarios.
- To explore the drivers of heightened CO2 diurnal variability and its impact on marine organisms.
Main Methods:
- Modification of a global ocean biogeochemical model to incorporate diurnal variability.
- Forcing the model with 3-hour atmospheric outputs from an Earth system model.
- Analysis of historical changes and projections under high-emission and high-mitigation scenarios.
Main Results:
- Global mean diurnal amplitude of pCO2 increased by 226% under a high-emission scenario and 55% under a high-mitigation scenario compared to preindustrial levels.
- The probability of extreme diurnal amplitudes of pCO2 and [H+] increased 30- to 60-fold under high 21st-century emissions.
- Enhanced sensitivity of pCO2 to temperature changes, driven by ocean CO2 absorption, is the primary cause of increased diurnal variability.
Conclusions:
- Future ocean organisms will experience enhanced diurnal variability in pCO2 and [H+].
- This increased variability is projected to lead to higher metabolic costs for marine life.
- Understanding and projecting these changes are crucial for assessing the impact of climate change on marine ecosystems.
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