Implementing a New Rubber Plant Functional Type in the Community Land Model (CLM5) Improves Accuracy of Carbon and Water Flux Estimation
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Ashehad A. Ali | E. Veldkamp | Chonggang Xu | A. Knohl | C. Koven | M. Kotowska | C. Leuschner | A. Meijide | H. Kreft | A. Olchev | F. Moyano | R. Fisher | Yuanchao Fan | T. June | S. Tarigan | C. Stiegler | A. Röll | D. Hölscher | M. Corre | A. Ringeler | K. Dagon | A. Cahyo | Rahmi Ariani | Evelyn Preuss-Hassler | A. Ali
[1] Ashehad A. Ali,et al. Using a Bottom-Up Approach to Scale Leaf Photosynthetic Traits of Oil Palm, Rubber, and Two Coexisting Tropical Woody Species , 2021, Forests.
[2] H. Piepho,et al. Converting forests into rubber plantations weakened the soil CH4 sink in tropical uplands , 2019, Land Degradation & Development.
[3] Hendrayanto,et al. Transpiration on the rebound in lowland Sumatra , 2019, Agricultural and Forest Meteorology.
[4] Jianchu Xu,et al. Climbing the mountain fast but smart: Modelling rubber tree growth and latex yield under climate change , 2019, Forest Ecology and Management.
[5] Haiying Yu,et al. Responses of rubber leaf phenology to climatic variations in Southwest China , 2019, International Journal of Biometeorology.
[6] Shusen Wang,et al. Relationship between gross primary production and canopy colour indices from digital camera images in a rubber (Hevea brasiliensis) plantation, Southwest China , 2019, Forest Ecology and Management.
[7] J. Grace,et al. Pattern and driving factor of intense defoliation of rubber plantations in SW China , 2018, Ecological Indicators.
[8] Yahya Abd Karim,et al. Projections on future impact and vulnerability of climate change towards rubber areas in Peninsular Malaysia , 2018, IOP Conference Series: Earth and Environmental Science.
[9] A. Knohl,et al. Impact of forest conversion to oil palm and rubber plantations on microclimate and the role of the 2015 ENSO event , 2018 .
[10] Hendrayanto,et al. Rubber tree transpiration in the lowlands of Sumatra , 2017 .
[11] Andreas Heinimann,et al. Mapping the Expansion of Boom Crops in Mainland Southeast Asia Using Dense Time Stacks of Landsat Data , 2017, Remote. Sens..
[12] Harrie-Jan Hendricks Franssen,et al. Evaluation and uncertainty analysis of regional-scale CLM4.5 net carbon flux estimates , 2017 .
[13] G. Lan,et al. Rubber Trees Demonstrate a Clear Retranslocation Under Seasonal Drought and Cold Stresses , 2016, Front. Plant Sci..
[14] K. Wiegand,et al. Ecological and socio-economic functions across tropical land use systems after rainforest conversion , 2016, Philosophical Transactions of the Royal Society B: Biological Sciences.
[15] Ashehad A. Ali,et al. A global scale mechanistic model of photosynthetic capacity (LUNA V1.0) , 2016 .
[16] D. Hertel,et al. Conversion of tropical lowland forest reduces nutrient return through litterfall, and alters nutrient use efficiency and seasonality of net primary production , 2016, Oecologia.
[17] M. Babel,et al. EVALUATION OF LAND AND WATER MANAGEMENT OPTIONS TO ENHANCE PRODUCTIVITY OF RUBBER PLANTATION USING WaNuLCAS MODEL , 2016 .
[18] G. Maire,et al. A sub-canopy structure for simulating oil palm in the Community Land Model (CLM-Palm): phenology, allocation and yield , 2015 .
[19] T. Giambelluca,et al. How do rubber ( Hevea brasiliensis ) plantations behave under seasonal water stress in northeastern Thailand and central Cambodia , 2015 .
[20] E. Veldkamp,et al. Soil fertility controls soil–atmosphere carbon dioxide and methane fluxes in a tropical landscape converted from lowland forest to rubber and oil palm plantations , 2015 .
[21] Christoph Leuschner,et al. Quantifying above‐ and belowground biomass carbon loss with forest conversion in tropical lowlands of Sumatra (Indonesia) , 2015, Global change biology.
[22] Rosie A. Fisher,et al. Environmental drivers of drought deciduous phenology in the Community Land Model , 2015 .
[23] E. Veldkamp,et al. Soil Nitrogen-Cycling Responses to Conversion of Lowland Forests to Oil Palm and Rubber Plantations in Sumatra, Indonesia , 2015, PloS one.
[24] E. Veldkamp,et al. Conversion of lowland tropical forests to tree cash crop plantations loses up to one-half of stored soil organic carbon , 2015, Proceedings of the National Academy of Sciences.
[25] S. Fang,et al. [Effects of future climate change on climatic suitability of rubber plantation in China]. , 2015, Ying yong sheng tai xue bao = The journal of applied ecology.
[26] Atul K. Jain,et al. Climate‐driven uncertainties in modeling terrestrial gross primary production: a site level to global‐scale analysis , 2014, Global change biology.
[27] Yiping Zhang,et al. Do the rubber plantations in tropical China act as large carbon sinks , 2014 .
[28] C. Jourdan,et al. Impact of tapping and soil water status on fine root dynamics in a rubber tree plantation in Thailand , 2013, Front. Plant Sci..
[29] M. Torn,et al. The effect of vertically resolved soil biogeochemistry and alternate soil C and N models on C dynamics of CLM4 , 2013 .
[30] T. Giambelluca,et al. Simulation of canopy CO2/H2O fluxes for a rubber (Hevea brasiliensis) plantation in central Cambodia: The effect of the regular spacing of planted trees , 2013 .
[31] Jianchu Xu,et al. Soil Carbon Stocks Decrease following Conversion of Secondary Forests to Rubber (Hevea brasiliensis) Plantations , 2013, PloS one.
[32] Dirk Pflugmacher,et al. Mapping Rubber Plantations and Natural Forests in Xishuangbanna (Southwest China) Using Multi-Spectral Phenological Metrics from MODIS Time Series , 2013, Remote. Sens..
[33] Corinne Le Quéré,et al. Carbon emissions from land use and land-cover change , 2012 .
[34] Belinda A. Margono,et al. Mapping and monitoring deforestation and forest degradation in Sumatra (Indonesia) using Landsat time series data sets from 1990 to 2010 , 2012 .
[35] L. Hutley,et al. Is productivity of mesic savannas light limited or water limited? Results of a simulation study , 2011 .
[36] S. Thanisawanyangkura,et al. Effect of leaf age and position on light-saturated CO2 assimilation rate, photosynthetic capacity, and stomatal conductance in rubber trees , 2010, Photosynthetica.
[37] M. Isaac,et al. Litterfall and litter nutrient dynamics under cocoa ecosystems in lowland humid Ghana , 2010, Plant and Soil.
[38] S. Thanisawanyangkura,et al. Carbohydrate storage in wood and bark of rubber trees submitted to different level of C demand induced by latex tapping. , 2009, Tree physiology.
[39] A. Ziegler,et al. The Rubber Juggernaut , 2009, Science.
[40] P. Kasemsap,et al. Photosynthetic capacity and temperature responses of photosynthesis of rubber trees (Hevea brasiliensis Müll. Arg.) acclimate to changes in ambient temperatures , 2009, Trees.
[41] Minoru Gamo,et al. Spatial distribution of carbon balance in forest ecosystems across East Asia , 2008 .
[42] H. Yeang,et al. Synchronous flowering of the rubber tree (Hevea brasiliensis) induced by high solar radiation intensity. , 2007, The New phytologist.
[43] P. Thaler,et al. Carbohydrate reserves as a competing sink: evidence from tapping rubber trees. , 2007, Tree physiology.
[44] J. Laclau,et al. Dynamics of biomass and nutrient accumulation in rubber (Hevea brasiliensis) plantations established on two soil types: Implications for nutrient management over the immature phase , 2021 .
[45] M. D. Behera,et al. Predicting the distribution of rubber trees (Hevea brasiliensis) through ecological niche modelling with climate, soil, topography and socioeconomic factors , 2015, Ecological Research.
[46] Peter A. Troch,et al. Local hydrologic effects of introducing non‐native vegetation in a tropical catchment , 2008 .