Satellite-Observed Increase in Aboveground Carbon over Southwest China during 2013-2021

Author:

Fan Lei12,Dong Guanyu12,Frappart Frédéric34,Wigneron Jean-Pierre34,Yue Yuemin5,Xiao Xiangming6,Zhang Yao7,Tao Shengli8,Cao Lin9,Li Yuechen12,Ma Mingguo12,Fang Hongqian12,Yu Ling12,Xing Zanpin10,Li Xiaojun34,Shi Weiyu12,Chen Xiuzhi11,Fensholt Rasmus12

Affiliation:

1. Chongqing Jinfo Mountain Karst Ecosystem National Observation and Research Station, School of Geographical Sciences, Southwest University, Chongqing 400715, China.

2. Chongqing Engineering Research Center for Remote Sensing Big Data Application, School of Geographical Sciences, Southwest University, Chongqing 400715, China.

3. Université de Bordeaux, 33400 Talence, France.

4. INRAE, Bordeaux Sciences Agro, UMR 1391 ISPA, 33140 Villenave-d’Ornon, France.

5. Key Laboratory for Agro-ecological Processes in Subtropical Region, Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha, China.

6. Department of Microbiology and Plant Biology, Center for Earth Observation and Modeling, University of Oklahoma, Norman, OK 73019, USA.

7. Sino-French Institute for Earth System Science, College of Urban and Environmental Sciences, Peking University, Beijing 100101, China.

8. Institute of Ecology, College of Urban and Environmental Sciences, Peking University, Beijing 100871, China.

9. Co-Innovation Center for the Sustainable Forestry in Southern China, Nanjing Forestry University, Nanjing 210037, China.

10. Cryosphere Research Station on the Qinghai-Tibet Plateau, State Key Laboratory of Cryospheric Science, Northwest Institute of Eco-Environment and Resource, Chinese Academy of Sciences, Lanzhou, Gansu 730000, China.

11. School of Atmospheric Sciences, Sun Yat-sen University, Zhuhai 519082, Guangdong, China.

12. Department of Geosciences and Natural Resource Management, University of Copenhagen, Copenhagen, Denmark.

Abstract

Over the past 4 decades, Southwest China has the fast vegetation growth and aboveground biomass carbon (AGC) accumulation, largely attributed to the active implementation of ecological projects. However, Southwest China has been threatened by frequent extreme drought events recently, potentially countering the expected large AGC increase caused by the ecological projects. Here, we used the L-band vegetation optical depth to quantify the AGC dynamics over Southwest China during the period 2013-2021. Our results showed a net AGC sink of 0.064 [0.057, 0.077] Pg C year −1 (the range represents the maximum and minimum AGC values), suggesting that Southwest China acted as an AGC sink over the study period. Note that the AGC loss of 0.113 [0.101, 0.136] Pg C year −1 was found during 2013-2014, which could mainly be attributed to the negative influence of extreme droughts on AGC changes in Southwest China, particularly in the Yunnan province. For each land use type (i.e., dense forests, persistent forests, nonforests, afforestation, and forestry), the largest AGC stock increase of 0.032 [0.028, 0.036] Pg C year −1 was found in nonforests, owing to their widespread land cover rate over Southwest China. For AGC density (i.e., AGC per unit area), the afforestation areas showed the largest AGC density increase of 0.808 [0.724, 0.985] Mg C ha −1 year −1 , reflecting the positive effect of afforestation on AGC increase. Moreover, the karst areas exhibited a higher increasing rate of AGC density than nonkarst areas, suggesting that the karst ecosystems have a high carbon sink capacity over Southwest China.

Publisher

American Association for the Advancement of Science (AAAS)

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