Solar Radiation Triggers the Bimodal Leaf Phenology of Central African Evergreen Broadleaved Forests

Author:

Liu Liyang12ORCID,Ciais Philippe2ORCID,Maignan Fabienne2ORCID,Zhang Yuan2,Viovy Nicolas2ORCID,Peaucelle Marc3,Kearsley Elizabeth45,Hufkens Koen45,Bauters Marijn45,Chapman Colin A.678,Fu Zheng9ORCID,Lin Shangrong10,Lu Haibo11ORCID,Ren Jiashun1,Yang Xueqin1,He Xianjin2ORCID,Chen Xiuzhi1ORCID

Affiliation:

1. Guangdong Province Key Laboratory for Climate Change and Natural Disaster Studies School of Atmospheric Sciences Sun Yat‐Sen University & Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai) Zhuhai China

2. Laboratoire des Sciences du Climat et de l’Environnement IPSL CEA‐CNRS‐UVSQ Université Paris‐Saclay Gif Sur Yvette France

3. INRAE Université de Bordeaux UMR 1391 ISPA Villenave‐d'Ornon France

4. BlueGreen Labs Melsele Belgium

5. Department of Environment Computational and Applied Vegetation Ecology Ghent University Ghent Belgium

6. Biology Department Vancouver Island University Nanaimo BC Canada

7. School of Life Sciences University of KwaZulu‐Natal Pietermaritzburg South Africa

8. Shaanxi Key Laboratory for Animal Conservation Northwest University Xi'an China

9. Key Laboratory of Ecosystem Network Observation and Modeling, Institute of Geographic Sciences and Natural Resources Research Chinese Academy of Sciences Beijing China

10. Carbon‐Water Research Station in Karst Regions of Northern Guangdong, School of Geography and Planning Sun Yat‐Sen University Guangzhou China

11. Department of Geography Faculty of Arts and Sciences & Zhuhai Branch of State Key Laboratory of Earth Surface Processes and Resource Ecology Beijing Normal University Zhuhai China

Abstract

AbstractCentral African evergreen broadleaved forests around the equator exhibit a double annual cycle for canopy phenology and carbon uptake seasonality. The underlying drivers of this behavior are poorly understood and the double seasonality is not captured by land surface models (LSM). In this study, we developed a new leaf phenology module into the ORCHIDEE LSM (hereafter ORCHIDEE‐AFP), which utilizes short‐wave incoming radiation (SWd) as the main driver of leaf shedding and partial rejuvenation of the canopy, to simulate the double seasonality of central African forests. The ORCHIDEE‐AFP model has been evaluated by using field data from two forest sites and satellite observations of the enhanced vegetation index (EVI), which is a proxy of young leaf area index (LAIYoung) with leafage less than 6 months, as well as six products of GPP or GPP proxies. Results demonstrate that ORCHIDEE‐AFP successfully reproduces observed leaf turnover (R = 0.45) and young leaf abundance (R = 0.74), and greatly improve the representation of the bimodal leaf phenology. The proportion of grid cells with a significant positive correlation between the seasonality of modeled LAIYoung and observed EVI increased from 0.2% in the standard model to 27% in the new model. For photosynthesis, the proportions of grid cells with significant positive correlations between modeled and observed seasonality range from 26% to 65% across the six GPP evaluation products. The improved performance of the ORCHIDEE‐AFP model in simulating leaf phenology and photosynthesis of central African forests will allow a more accurate assessment of the impacts of climate change in tropical forests.

Funder

China Scholarship Council

National Natural Science Foundation of China

Belgian Federal Science Policy Office

International Development Research Centre

Publisher

American Geophysical Union (AGU)

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