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Article

Response of Bare Soil Respiration to Air and Soil Temperature Variations According to Different Models: A Case Study of an Urban Grassland

by
Egor A. Dyukarev
1,2,* and
Sergey A. Kurakov
1
1
Institute of Monitoring of Climatic and Ecological System SB RAS, Tomsk 634055, Russia
2
Laboratory of Ecosystem-Atmosphere Interactions in Forest-Bog Complexes, Yugra State University, Khanty-Mansiysk 628012, Russia
*
Author to whom correspondence should be addressed.
Land 2023, 12(5), 939; https://doi.org/10.3390/land12050939
Submission received: 18 March 2023 / Revised: 14 April 2023 / Accepted: 19 April 2023 / Published: 22 April 2023
(This article belongs to the Special Issue Monitoring GHG Emissions from Land Use Change and Disturbances)

Abstract

Soil respiration is an important component of the global carbon cycle and is highly responsive to disturbances in the environment. Human impacts on the terrestrial ecosystem lead to changes in the environmental conditions, and following this, changes in soil respiration. Predicting soil respiration and its changes under future climatic and land-use conditions requires a clear understanding of the processes involved. The observation of CO2 fluxes was conducted at an urban grassland, where plants were removed and respiration from bare soil was measured. Nine soil respiration models were applied to describe the temperature dependence of heterotrophic soil respiration. Modified models were suggested, including a linear relationship of the temperature sensitivity and base respiration coefficients with soil temperature at various depths. We demonstrate that modification improves the simulated soil respiration. The exponential and logistic models with linear dependences on the model parameters from the soil temperatures were the best models describing soil respiration fluxes. Variability of the apparent temperature sensitivity coefficient (Q10) was demonstrated, depending on the model used. The Q10 value can be extremely high and does not reflect the actual relationships between soil respiration and temperature. Our findings have important implications for better understanding and accurately assessing the carbon cycling characteristics of terrestrial ecosystems in response to climate change in a temporal perspective.
Keywords: soil respiration; heterotrophic respiration; mathematical modeling; field measurements; chamber method; temperature sensitivity soil respiration; heterotrophic respiration; mathematical modeling; field measurements; chamber method; temperature sensitivity

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MDPI and ACS Style

Dyukarev, E.A.; Kurakov, S.A. Response of Bare Soil Respiration to Air and Soil Temperature Variations According to Different Models: A Case Study of an Urban Grassland. Land 2023, 12, 939. https://doi.org/10.3390/land12050939

AMA Style

Dyukarev EA, Kurakov SA. Response of Bare Soil Respiration to Air and Soil Temperature Variations According to Different Models: A Case Study of an Urban Grassland. Land. 2023; 12(5):939. https://doi.org/10.3390/land12050939

Chicago/Turabian Style

Dyukarev, Egor A., and Sergey A. Kurakov. 2023. "Response of Bare Soil Respiration to Air and Soil Temperature Variations According to Different Models: A Case Study of an Urban Grassland" Land 12, no. 5: 939. https://doi.org/10.3390/land12050939

APA Style

Dyukarev, E. A., & Kurakov, S. A. (2023). Response of Bare Soil Respiration to Air and Soil Temperature Variations According to Different Models: A Case Study of an Urban Grassland. Land, 12(5), 939. https://doi.org/10.3390/land12050939

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