N: 90 S: -90 E: 180 W: -180
Description
The MOD16A2 Version 6.1 Evapotranspiration/Latent Heat Flux product is an 8-day composite dataset produced at 500 meter (m) pixel resolution. The algorithm used for the MOD16 data product collection is based on the logic of the Penman-Monteith equation, which includes inputs of daily meteorological reanalysis data along with Moderate Resolution Imaging Spectroradiometer (MODIS) remotely sensed data products such as vegetation property dynamics, albedo, and land cover.
Provided in the MOD16A2 product are layers for composited Evapotranspiration (ET), Latent Heat Flux (LE), Potential ET (PET) and Potential LE (PLE) along with a quality control layer. Two low resolution browse images, ET and LE, are also available for each MOD16A2 granule.
The pixel values for the two Evapotranspiration layers (ET and PET) are the sum of all eight days within the composite period and the pixel values for the two Latent Heat layers (LE and PLE) are the average of all eight days within the composite period. Note that the last acquisition period of each year is a 5 or 6-day composite period, depending on the year.
Known Issues
- Operational and uncertainty issues are provided under Section 3 in the User Guide.
- For complete information about known issues please refer to the MODIS/VIIRS Land Quality Assessment website.
Version Description
Product Summary
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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File Naming Convention
The file name begins with the Product Short Name (MOD16A2) followed by the Julian Date of Acquisition formatted as AYYYYDDD (A2025201), the Tile Identifier which is horizontal tile and vertical tile provided as hXXvYY (h07v05), the Version of the data collection (061), the Julian Date and Time of Production designated as YYYYDDDHHMMSS (2025217003056), and the Data Format (hdf).
Documents
USER'S GUIDE
ALGORITHM THEORETICAL BASIS DOCUMENT (ATBD)
PRODUCT QUALITY ASSESSMENT
SCIENCE DATA PRODUCT VALIDATION
Publications Citing This Dataset
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| The use of remote sensing-based ET estimates to improve global hydrological simulations in the community land model version 5.0 | Wang, Dayang, Wang, Dagang, Mo, Chongxun | Evapotranspiration, Latent Heat Flux | |
| Unique episodic groundwater recharge event in a South American sedimentary aquifer and its longterm impact on baseflow | Dambros Melati, Mauricio, Mainardi Fan, Fernando, Barbosa Athayde, Gustavo, Roehe Reginato, Pedro Antonio, Collischonn, Walter, de Vasconcelos Muller Athayde, Camila | Evapotranspiration, Latent Heat Flux | |
| Toward operational validation systems for global satellite-based terrestrial essential climate variables | Bayat, Bagher, Camacho, Fernando, Nickeson, Jaime, Cosh, Michael, Bolten, John, Vereecken, Harry, Montzka, Carsten | Brightness Temperature, Microwave Imagery, Soil Moisture/Water Content, Vegetation Water Content, Evapotranspiration, Latent Heat Flux, Leaf Characteristics, Photosynthetically Active Radiation, Leaf Area Index (LAI), Fraction Of Absorbed Photosynthetically Active Radiation (fapar), Photosynthesis, Primary Production, Emissivity, Land Surface Temperature, Normalized Difference Vegetation Index (NDVI), Albedo, Anisotropy, Reflectance, Sea Surface Temperature | |
| The Water Availability on the Chinese Loess Plateau since the | Qiu, Linjing, Chen, Yuting, Wu, Yiping, Xue, Qingyue, Shi, Zhaoyang, Lei, Xiaohui, Liao, Weihong, Zhao, Fubo, Wang, Wenke | Reflectance, Evapotranspiration, Latent Heat Flux | |
| Perturbation of urbanization to Earth's surface energy balance | Shen, Pengke, Zhao, Shuqing, Ma, Yongjing | Urban Lands, Land Use/Land Cover, Urbanization/Urban Sprawl, Infrastructure, Albedo, Anisotropy, Emissivity, Land Surface Temperature, Evapotranspiration, Latent Heat Flux | |
| Performance comparison of Penman-Monteith and Priestley-Taylor models using MOD16A2 remote sensing product | Shekar, N. C. Sanjay, Hemalatha, H. N. | Reflectance, Land Surface Temperature, Emissivity, Evapotranspiration, Latent Heat Flux | |
| Variations in the aboveground phytomass in northern Eurasia in the 21st century | Tishkov, A. A., Krenke, A. N., Titova, S. V., Belonovskaya, E. A., Tsarevskaya, N. G. | Canopy Characteristics, Evergreen Vegetation, Crown, Deciduous Vegetation, Leaf Characteristics, Vegetation Cover, Land Use/Land Cover Classification, Photosynthesis, Primary Production, Vegetation Productivity, Evapotranspiration, Latent Heat Flux | |
| Vegetation degradation in ENSO events: Drought assessment, soil use and vegetation evapotranspiration in the Western Brazilian Amazon | Vilanova, Regiane Souza, Delgado, Rafael Coll, Frossard de Andrade, Caio, Lopes dos Santos, Gilsonley, Magistrali, Iris Cristiane, Moreira de Oliveira, Carlos Magno, Teodoro, Paulo Eduardo, Capristo Silva, Guilherme Fernando, Silva Junior, Carlos Antonio da, de Avila Rodrigues, Rafael | Evapotranspiration, Latent Heat Flux | |
| Wetlands cool land surface temperature in tropical regions but warm in boreal regions | Wu, Yuxuan, Xi, Yi, Feng, Maoyuan, Peng, Shushi | Land Use/Land Cover Classification, Evapotranspiration, Latent Heat Flux, Albedo, Anisotropy, Reflectance | |
| Quantifying the contribution of lucc to surface energy budgetA case study of four typical cities in the yellow river basin in china | Chi, Qian, Zhou, Shenghui, Wang, Lijun, Zhu, Mengyao, Liu, Dandan, Tang, Weichao, Zhao, Xiao, Xu, Siqi, Ye, Siyu, Lee, Jay, Cui, Yaoping | Land Surface Temperature, Emissivity, Evapotranspiration, Latent Heat Flux, Albedo, Anisotropy | |
| Quantifying the effects of land use and model scale on water partitioning and water ages using tracer-aided ecohydrological models | Smith, Aaron, Tetzlaff, Doerthe, Kleine, Lukas, Maneta, Marco, Soulsby, Chris | Evapotranspiration, Latent Heat Flux | |
| Quantifying the Impact of Evapotranspiration at the Aquifer Scale via Groundwater Modelling and MODIS Data | Colombani, Nicolo, Gaiolini, Mattia, Busico, Gianluigi, Postacchini, Matteo | Evapotranspiration, Photosynthesis, Primary Production, Latent Heat Flux | |
| Reference evapotranspiration (Eto) methods implemented as arcmap models with remote-sensed and ground-based inputs, examined along with modis et, for peloponnese, greece | Dimitriadou, Stavroula, Nikolakopoulos, Konstantinos G. | Evapotranspiration, Latent Heat Flux | |
| Regional analysis of evapotranspiration changes in an arid river basin using satellite observations | Zhu, Xiaoqian, Jin, Xiaomei, Zhang, Xucai, Zhang, Jing | Evapotranspiration, Latent Heat Flux | |
| Recognition of different yield potentials among rain-fed wheat fields before harvest using remote sensing | Sabzchi-Dehkharghani, Hamed, Nazemi, Amir Hossein, Sadraddini, Ali Ashraf, Majnooni-Heris, Abolfazl, Biswas, Asim | Evapotranspiration, Latent Heat Flux | |
| Data-based agroecological zoning of Acrocomia aculeata: GIS modeling and | Resende, Rafael T., Kuki, Kacilda N., Correa, Thais Roseli, Zaidan, Ursula R., Mota, Pedro Henrique S., Telles, Lucas Arthur A., Gonzales, Duberli G.E., Motoike, Sergio Y., Resende, Marcos Deon V., Leite, Helio G., Lorenzon, Alexandre S. | Evapotranspiration, Latent Heat Flux | |
| Crop yield estimation using multi-source satellite image series and deep learning | Ghazaryan, Gohar, Skakun, Sergii, Konig, Simon, Rezaei, Ehsan Eyshi, Siebert, Stefan, Dubovyk, Olena | Reflectance, Land Surface Temperature, Emissivity, Evapotranspiration, Latent Heat Flux | |
| Continental drought monitoring using satellite soil moisture, data assimilation and an integrated drought index | Xu, Lei, Abbaszadeh, Peyman, Moradkhani, Hamid, Chen, Nengcheng, Zhang, Xiang | Evapotranspiration, Latent Heat Flux | |
| Contrasting hydrological seasonality with latitude in the South American ChacoThe roles of climate and vegetation activity | Marchesini, Victoria A., Nosetto, Marcelo D., Houspanossian, Javier, Jobbagy, Esteban G. | Land Use/Land Cover Classification, Evapotranspiration, Latent Heat Flux, Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI) | |
| Determining the dry boundary of the LST/FVC space for soil moisture monitoringa semi-empirical method | Sun, Hao, Ma, Liru, Wang, Yanmei, Zhou, Baichi, Liu, Weihan, Cai, Chuangchuang, Zhou, Wei, Chen, Wei | Leaf Characteristics, Photosynthetically Active Radiation, Leaf Area Index (LAI), Fraction Of Absorbed Photosynthetically Active Radiation (fapar), Reflectance, Anisotropy, Evapotranspiration, Latent Heat Flux, Photosynthesis, Primary Production, Land Surface Temperature, Emissivity | |
| Estimation of seasonal evapotranspiration for crops in arid regions using multisource remote sensing images | Cha, Mingxing, Li, Mengmeng, Wang, Xiaoqin | Terrain Elevation, Digital Elevation/Terrain Model (DEM), Topographical Relief Maps, Evapotranspiration, Latent Heat Flux | |
| Evaluation of three new surface irrigation parameterizations in the WRF-ARW v3. 8.1 model: the Po Valley (Italy) case study | Valmassoi, Arianna, Dudhia, Jimy, Di Sabatino, Silvana, Pilla, Francesco | Evapotranspiration, Latent Heat Flux | |
| Evapotranspiration and precipitation over pasture and soybean areas in the xingu river basin, an expanding amazonian agricultural frontier | de Oliveira, Gabriel, Chen, Jing M., Mataveli, Guilherme A. V., Chaves, Michel E. D., Rao, Jing, Sternberg, Marcelo, dos Santos, Thiago V., dos Santos, Carlos A. C. | Evapotranspiration, Latent Heat Flux | |
| Evapotranspiration climatology of indiana using in situ and remotely sensed products | Niyogi, Dev, Jamshidi, Sajad, Smith, David, Kellner, Olivia | Evapotranspiration, Latent Heat Flux | |
| Evaluation of Different Objective Functions Used in the SUFI-2 | Sao, Davy, Kato, Tasuku, Tu, Le Hoang, Thouk, Panha, Fitriyah, Atiqotun, Oeurng, Chantha | Evapotranspiration, Latent Heat Flux |