N: 70.4696 S: -2.6091 E: 24.295 W: -157.409
Description
Fluxes of carbon dioxide, water vapor, and energy exchange have been measured at 38 forest, grassland, and crop sites as part of the EUROFLUX and AmeriFlux projects. A total of 97 site-years of data were compiled, primarily between 1996 and 1998 but also for 1992-1995 and 1999-2000. Half-hour flux and meteorology measurements are included plus the gap-filled half-hour estimates and aggregations to day and night, weekly, monthly, and annual periods. The FLUXNET 2000 Synthesis Workshop was held at the Marconi Conference Center, Marshall, California, June 11-14, 2000. The Marconi Flux Data Collection was compiled to aid in exploring the interactions between the terrestrial biosphere and the overlying atmosphere through carbon, water, and energy exchanges. The workshop resulted in several studies to synthesize and interpret differences and similarities in long-term measurements of carbon dioxide, water vapor, and energy exchanges between vegetation and the atmosphere for a spectrum of ecosystems. A series of synthesis papers based on these data and studies was published in a special issue of the Agriculture and Forest Meteorology, Volume 113, 2002. The papers are listed in the reference section. This data product is being archived as a record of the data used the AFM special issue. Updates and revisions to the data are available at the FLUXNET web site.The eddy covariance technique is used for long-term continuous measurements of mass and energy fluxes to capture seasonal dynamics and allow for a meaningful scaling with respect to time. The equipment and methodology were standardized among sites by using common software and instrumentation. Comparisons of ecosystem fluxes among sites are usually performed on annual or monthly sums calculated on complete data records; however, the average site data coverage during a year was only 65%. Therefore, development and application of robust and consistent data gap-filling methods was required before fluxes could be calculated. One of the outcomes of the FLUXNET project was computer applications to process the data into complete, consistent, quality assured, and documented data sets (Falge et al. 2001a,b). Gap-filled flux data from four different filling methods are reported. Selected meteorological parameters were also gap filled to support flux estimating methods and are reported along with non-filled meteorological data. Note that the measured/estimated CO2 fluxes and storage fluxes were summed into net ecosystem exchange (NEE), and ONLY NEE data are reported.
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Citation
Citation is critically important for dataset documentation and discovery. This dataset is openly shared, without restriction, in accordance with the EOSDIS Data Use and Citation Guidance.
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Documents
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| GPP estimation by transfer learning with combined solar-induced chlorophyll fluorescence and eddy covariance data | Ma, Yongming, Guan, Xiaobin, Wang, Yuchen, Li, Yuyu, Lin, Dekun, Shen, Huanfeng | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Flagging inconsistencies in flux tower data | Jung, Martin, Nelson, Jacob, Migliavacca, Mirco, El-Madany, Tarek, Papale, Dario, Reichstein, Markus, Walther, Sophia, Wutzler, Thomas | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Improving MODIS Gross Primary Productivity by Bridging Big-Leaf and Two-Leaf Light Use Efficiency Models | Ma, Yongming, Guan, Xiaobin, Chen, Jing Ming, Ju, Weimin, Huang, Wenli, Shen, Huanfeng | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Seasonal Characteristics of AirSea Exchanges over the South Coast of Matara, Sri Lanka | Lu, Xuancheng, Luo, Yao, Wang, Dongxiao, Yao, Jinglong, Priyadarshana, Tilak, Zhang, Zhenqiu, Zhou, Fenghua | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Machine learning approach to predict terrestrial gross primary productivity using topographical and remote sensing data | Prakash Sarkar, Deep, Uma Shankar, B., Ranjan Parida, Bikash | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Net ecosystem exchange comparative analysis of the relative influence of recorded variables in well monitored ecosystems | Wood, David A. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Net ecosystem carbon exchange prediction and insightful data mining with an optimized data-matching algorithm | Wood, David A. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Quantifying the role of moss in terrestrial ecosystem carbon dynamics in | Zha, Junrong, Zhuang, Qianlai | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux, Soil Moisture/Water Content, Soil Moisture, Methane, Soil Depth, Incoming Solar Radiation, Snow Depth, Wind Speed, Atmospheric Carbon Dioxide, Rain, Humidity | |
| Analysis of the 21-years long carbon dioxide flux dataset from a Central European tall tower site | Barcza, Z., Kern, A., Davis, K.J., Haszpra, L. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Ideas and perspectives: enhancing the impact of the FLUXNET network of eddy covariance sites | Papale, Dario | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Prediction and analysis of net ecosystem carbon exchange based on gradient boosting regression and random forest | Cai, Jianchao, Xu, Kai, Zhu, Yanhui, Hu, Fang, Li, Liuhuan | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| The FLUXNET2015 dataset and the ONEFlux processing pipeline for eddy covariance data | Pastorello, Gilberto, Trotta, Carlo, Canfora, Eleonora, Chu, Housen, Christianson, Danielle, Cheah, You-Wei, Poindexter, Cristina, Chen, Jiquan, Elbashandy, Abdelrahman, Humphrey, Marty, Isaac, Peter, Polidori, Diego, Reichstein, Markus, Ribeca, Alessio, van Ingen, Catharine, Vuichard, Nicolas, Zhang, Leiming, Amiro, Brian, Ammann, Christof, Arain, M. Altaf, Ardo, Jonas, Arkebauer, Timothy, Arndt, Stefan K., Arriga, Nicola, Aubinet, Marc, Aurela, Mika, Baldocchi, Dennis, Barr, Alan, Beamesderfer, Eric, Marchesini, Luca Belelli, Bergeron, Onil, Beringer, Jason, Bernhofer, Christian, Berveiller, Daniel, Billesbach, Dave, Black, Thomas Andrew, Blanken, Peter D., Bohrer, Gil, Boike, Julia, Bolstad, Paul V., Bonal, Damien, Bonnefond, Jean-Marc, Bowling, David R., Bracho, Rosvel, Brodeur, Jason, Brummer, Christian, Buchmann, Nina, Burban, Benoit, Burns, Sean P., Buysse, Pauline, Cale, Peter, Cavagna, Mauro, Cellier, Pierre, Chen, Shiping, Chini, Isaac, Christensen, Torben R., Cleverly, James, Collalti, Alessio, Consalvo, Claudia, Cook, Bruce D., Cook, David, Coursolle, Carole, Cremonese, Edoardo, Curtis, Peter S., DAndrea, Ettore, da Rocha, Humberto, Dai, Xiaoqin, Davis, Kenneth J., Cinti, Bruno De, Grandcourt, Agnes de, Ligne, Anne De, De Oliveira, Raimundo C., Delpierre, Nicolas, Desai, Ankur R., Di Bella, Carlos Marcelo, Tommasi, Paul di, Dolman, Han, Domingo, Francisco, Dong, Gang, Dore, Sabina, Duce, Pierpaolo, Dufrene, Eric, Dunn, Allison, Dusek, Jiri, Eamus, Derek, Eichelmann, Uwe, ElKhidir, Hatim Abdalla M., Eugster, Werner, Ewenz, Cacilia M., Ewers, Brent, Famulari, Daniela, Fares, Silvano, Feigenwinter, Iris, Feitz, Andrew, Fensholt, Rasmus, Filippa, Gianluca, Fischer, Marc, Frank, John, Galvagno, Marta, Gharun, Mana, Gianelle, Damiano, Gielen, Bert, Gioli, Beniamino, Gitelson, Anatoly, Goded, Ignacio, Goeckede, Mathias, Goldstein, Allen H., Gough, Christopher M., Goulden, Michael L., Graf, Alexander, Griebel, Anne, Gruening, Carsten, Grunwald, Thomas, Hammerle, Albin, Han, Shijie, Han, Xingguo, Hansen, Birger Ulf, Hanson, Chad, Hatakka, Juha, He, Yongtao, Hehn, Markus, Heinesch, Bernard, Hinko-Najera, Nina, Hortnagl, Lukas, Hutley, Lindsay, Ibrom, Andreas, Ikawa, Hiroki, Jackowicz-Korczynski, Marcin, Janous, Dalibor, Jans, Wilma, Jassal, Rachhpal, Jiang, Shicheng, Kato, Tomomichi, Khomik, Myroslava, Klatt, Janina, Knohl, Alexander, Knox, Sara, Kobayashi, Hideki, Koerber, Georgia, Kolle, Olaf, Kosugi, Yoshiko, Kotani, Ayumi, Kowalski, Andrew, Kruijt, Bart, Kurbatova, Julia, Kutsch, Werner L., Kwon, Hyojung, Launiainen, Samuli, Laurila, Tuomas, Law, Bev, Leuning, Ray, Li, Yingnian, Liddell, Michael, Limousin, Jean-Marc, Lion, Marryanna, Liska, Adam J., Lohila, Annalea, Lopez-Ballesteros, Ana, Lopez-Blanco, Efren, Loubet, Benjamin, Loustau, Denis, Lucas-Moffat, Antje, Luers, Johannes, Ma, Siyan, Macfarlane, Craig, Magliulo, Vincenzo, Maier, Regine, Mammarella, Ivan, Manca, Giovanni, Marcolla, Barbara, Margolis, Hank A., Marras, Serena, Massman, William, Mastepanov, Mikhail, Matamala, Roser, Matthes, Jaclyn Hatala, Mazzenga, Francesco, McCaughey, Harry, McHugh, Ian, McMillan, Andrew M. S., Merbold, Lutz, Meyer, Wayne, Meyers, Tilden, Miller, Scott D., Minerbi, Stefano, Moderow, Uta, Monson, Russell K., Montagnani, Leonardo, Moore, Caitlin E., Moors, Eddy, Moreaux, Virginie, Moureaux, Christine, Munger, J. William, Nakai, Taro, Neirynck, Johan, Nesic, Zoran, Nicolini, Giacomo, Noormets, Asko, Northwood, Matthew, Nosetto, Marcelo, Nouvellon, Yann, Novick, Kimberly, Oechel, Walter, Olesen, Jrgen Eivind, Ourcival, Jean-Marc, Papuga, Shirley A., Parmentier, Frans-Jan, Paul-Limoges, Eugenie, Pavelka, Marian, Peichl, Matthias, Pendall, Elise, Phillips, Richard P., Pilegaard, Kim, Pirk, Norbert, Posse, Gabriela, Powell, Thomas, Prasse, Heiko, Prober, Suzanne M., Rambal, Serge, Rannik, Ullar, Raz-Yaseef, Naama, Rebmann, Corinna, Reed, David, Dios, Victor Resco de, Restrepo-Coupe, Natalia, Reverter, Borja R., Roland, Marilyn, Sabbatini, Simone, Sachs, Torsten, Saleska, Scott R., Sanchez-Canete, Enrique P., Sanchez-Mejia, Zulia M., Schmid, Hans Peter, Schmidt, Marius, Schneider, Karl, Schrader, Frederik, Schroder, Ivan, Scott, Russell L., Sedlak, Pavel, Serrano-Ortiz, Penelope, Shao, Changliang, Shi, Peili, Shironya, Ivan, Siebicke, Lukas, Sigut, Ladislav, Silberstein, Richard, Sirca, Costantino, Spano, Donatella, Steinbrecher, Rainer, Stevens, Robert M., Sturtevant, Cove, Suyker, Andy, Tagesson, Torbern, Takanashi, Satoru, Tang, Yanhong, Tapper, Nigel, Thom, Jonathan, Tomassucci, Michele, Tuovinen, Juha-Pekka, Urbanski, Shawn, Valentini, Riccardo, van der Molen, Michiel, van Gorsel, Eva, van Huissteden, Ko, Varlagin, Andrej, Verfaillie, Joseph, Vesala, Timo, Vincke, Caroline, Vitale, Domenico, Vygodskaya, Natalia, Walker, Jeffrey P., Walter-Shea, Elizabeth, Wang, Huimin, Weber, Robin, Westermann, Sebastian, Wille, Christian, Wofsy, Steven, Wohlfahrt, Georg, Wolf, Sebastian, Woodgate, William, Li, Yuelin, Zampedri, Roberto, Zhang, Junhui, Zhou, Guoyi, Zona, Donatella, Agarwal, Deb, Biraud, Sebastien, Torn, Margaret, Papale, Dario | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| A simple new model for incoming solar radiation dependent only on screen-level relative humidity | Lindauer, M., Schmid, H. P., Grote, R., Steinbrecher, R., Mauder, M., Wolpert, B. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux, Precipitation Amount, Humidity, Shortwave Radiation, Incoming Solar Radiation, Atmospheric Pressure Measurements | |
| Implementation of data citations and persistent identifiers at the ORNL DAAC | Cook, Robert B., Vannan, Suresh K.S., McMurry, Benjamin F., Wright, Daine M., Wei, Y., Boyer, Alison G., Kidder, J.H. | Carbon, Nitrogen, Soil Water Holding Capacity, Soil Bulk Density, Soil Chemistry, Soil Classification, Soil Moisture/Water Content, Soil Horizons/Profile, Nitrogen Compounds, Nitrogen Oxides, Forests, Biomass, Discharge, Soil Depth, Albedo, Leaf Characteristics, Photosynthetically Active Radiation, Carbon, Respiration Rate, Atmospheric Water Vapor, Runoff, Ecosystem Functions, Agricultural Lands, Atmospheric Carbon Dioxide, Longwave Radiation, Shortwave Radiation, Air Temperature, Precipitation Amount, Land Use/Land Cover Classification, Surface Winds, Humidity, Solar Radiation, Net Radiation, Surface Pressure, Snow Depth, Land Surface Temperature, Radiative Flux, Water Vapor, Soil Temperature, Heat Flux, Wetlands, Inundation | |
| Contrasting local versus regional effects of land-use-change-induced heterogeneity on historical climate: analysis with the GFDL earth system model | Malyshev, Sergey, Shevliakova, Elena, Stouffer, Ronald J., Pacala, Stephen W. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Implementation of a dynamic rooting depth and phenology into a land surface model: Evaluation of carbon, water, and energy fluxes in the high latitude ecosystems | El Masri, Bassil, Shu, Shijie, Jain, Atul K. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Energy partitioning dynamics of drying terrestrial surfaces | Aminzadeh, Milad, Or, Dani | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Explaining the seasonal cycle of the globally averaged CO2 with a carbon-cycle model | Alexandrov, G. A. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux, Trace Gases/Trace Species, Atmospheric Carbon Dioxide, Sulfur Compounds | |
| Database Maintenance, Data Sharing Policy, Collaboration | Papale, Dario, Agarwal, Deborah A., Baldocchi, Dennis, Cook, Robert B., Fisher, Joshua B., van Ingen, Catharine | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Staying afloat in the sensor data deluge | Porter, John H., Hanson, Paul C., Lin, Chau-Chin | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| How useful are plant functional types in global simulations of the carbon, water, and energy cycles? | Alton, Paul B. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| A comparative study of a multilayer and a productivity (light-use) efficiency land-surface model over different temporal scales | Alton, Paul, Bodin, Per | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Carbon and nitrogen cycle dynamics in the O-CN land surface model: 1. | Zaehle, S., Friend, A. D. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| Differential responses of production and respiration to temperature and moisture drive the carbon balance across a climatic gradient in New Mexico | ANDERSON-TEIXEIRA, KRISTINA J., DELONG, JOHN P., FOX, ANDREW M., BRESE, DANIEL A., LITVAK, MARCY E. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux | |
| The Sensitivity of Latent Heat Flux to Changes in the Radiative Forcing: A Framework for Comparing Models and Observations | Winter, Jonathan M., Eltahir, Elfatih A. B. | Radiative Flux, Air Temperature, Water Vapor, Carbon, Surface Winds, Photosynthetically Active Radiation, Soil Temperature, Heat Flux |