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Boreal Forest Sensitivity to Temperature Is Jointly Regulated by Ecosystem Productivity and Seasonality: A Synthesis
Yanxing He1,2, Yichen Gao3, Jinzhong Xu4
1State Key Laboratory of Soil and Water Conservation and Desertification Control, College of Soil and Water Conservation Science and Engineering, Northwest A&F University, Yangling, Shaanxi, China.
Abstract:
Boreal forests are experiencing rapid global warming, which may amplify the impact of temperature on their carbon sink function. However, the factors influencing the sensitivity of the carbon balance to temperature in boreal forests are still not well understood, especially over short timescales. Leveraging the FLUXNET dataset, we calculated the sensitivities of carbon fluxes to temperature anomalies (Ts) across boreal forest (24 sites) on the seasonal scale. Here, a positive Ts value indicates that the carbon flux increases with temperature anomaly, while a negative value suggests the opposite. Results showed that Ts of NEP in early spring was positive for evergreen needleleaf forests but negative for deciduous broadleaved forests. Although Ts of gross ecosystem production (GEP) remained positive, it tended to decrease with increasing temperature and vapour pressure deficit in spring and summer. Associated with this decrease were relatively small changes in Ts of ecosystem respiration (Re), so that Ts of NEP decreased with increasing temperature and vapour pressure deficit in spring and summer. Both Ts of GEP and Re increased with ecosystem productivity (represented by annual GEP) in spring, with Ts of GEP being more sensitive, indicating that carbon sinks in sites with lower productivity tended to negatively respond to higher temperature. Young-aged and low-nutrient forests tended to respond negatively to increasing temperatures. Ecosystem productivity and seasonality played an essential role in regulating Ts of NEP. Our results suggest that significant declines in ecosystem productivity may exacerbate the negative response of NEP to elevated temperatures, further compromising carbon sequestration in boreal forests. This understanding is vital both for improving the predictive accuracy of carbon-climate models and for formulating targeted strategies to bolster resilience in the most vulnerable boreal ecosystems.
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