N: 53 S: 25 E: -67 W: -125
Description
This data set contains the primary forcing hourly data "File A" for Phase 2 of the North American Land Data Assimilation System (NLDAS-2). The data are in 1/8th degree grid spacing and range from Jan 1979 to the present. The temporal resolution is hourly. The file format is netCDF (converted from the GRIB data files).
The non-precipitation land surface forcing fields for NLDAS-2 are derived from the analysis fields of the NCEP North American Regional Reanalysis (NARR). NARR analysis fields are 32-km spatial resolution and 3-hourly temporal frequency. Those NARR fields that are utilized to generate NLDAS-2 forcing fields are spatially interpolated to the finer resolution of the NLDAS 1/8th-degree grid and then temporally disaggregated to the NLDAS hourly frequency. Additionally, the fields of surface pressure, surface downward longwave radiation, near-surface air temperature, and near-surface specific humidity are adjusted vertically to account for the vertical difference between the NARR and NLDAS fields of terrain height. This vertical adjustment applies the traditional vertical lapse rate of 6.5 K/km for air temperature. The details of the spatial interpolation, temporal disaggregation, and vertical adjustment are presented by Cosgrove et al. (2003).
The surface downward shortwave radiation field in "File A" is a bias-corrected field wherein a bias-correction algorithm was applied to the NARR surface downward shortwave radiation. This bias correction utilizes five years (1996-2000) of the hourly 1/8th-degree GOES-based surface downward shortwave radiation fields derived by Pinker et al. (2003). The potential evaporation field in "File A" is that computed in NARR using the modified Penman scheme of Mahrt and Ek (1984).
The precipitation field in "File A" is not the NARR precipitation forcing, but is rather a product of a temporal disaggregation of a gauge-only CPC analysis of daily precipitation, performed directly on the NLDAS grid and including an orographic adjustment based on the widely-applied PRISM climatology. The precipitation is temporally disaggregated into hourly fields by deriving hourly disaggregation weights from either WSR-88D Doppler radar-based precipitation estimates, 8-km CMORPH hourly precipitation analyses, or NARR-simulated precipitation (based on availability, in order). The latter fields from radar, CMORPH, and NARR are used only to derive disaggregation weights and do not change the daily total precipitation. The field in "File A" that gives the fraction of total precipitation that is convective is an estimate derived from the following two NARR precipitation fields (which are provided in "File B"): NARR total precipitation and NARR convective precipitation (the latter is less than or equal to the NARR total precipitation and can be zero). The Convective Available Potential Energy (CAPE) is the final variable in the forcing data set, also interpolated from NARR.
The hourly land surface forcing fields for NLDAS-2 are grouped into two files, "File A" and "File B". "File A" is the primary (default) forcing file and contains eleven meteorological forcing fields. Details about the generation of the NLDAS-2.0 forcing datasets can be found in Xia et al. (2012).
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Publications Citing This Dataset
| Title | Year Sort ascending | Author | Topic |
|---|---|---|---|
| Soil moisture data assimilation to estimate irrigation water use | AbolafiaRosenzweig, R., Livneh, B., Small, E.E., Kumar, S.V. | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature, Heat Flux, Evapotranspiration, Snow, Canopy Characteristics, Leaf Characteristics, Vegetation Cover, Soil Moisture/Water Content, Soil Temperature, Albedo, Snow Water Equivalent, Runoff | |
| Controls on surface soil drying rates observed by SMAP and simulated by the Noah land surface model | Shellito, Peter J., Small, Eric E., Livneh, Ben | Vegetation Index, Normalized Difference Vegetation Index (NDVI), Enhanced Vegetation Index (EVI), Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature, Heat Flux, Evapotranspiration, Snow, Canopy Characteristics, Leaf Characteristics, Vegetation Cover, Soil Moisture/Water Content, Soil Temperature, Albedo, Snow Water Equivalent, Runoff | |
| Estimating Soil Evaporation Using Drying Rates Determined from | Small, Eric E., Badger, Andrew M., Abolafia-Rosenzweig, Ronnie, Livneh, Ben | Soil Moisture/Water Content, Soil Temperature, Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| Evaluating the feasibility of using soil-moisture active passive satellite data to evaluate resilience of transportation infrastructures | Packman, Simon, Lopez, Sonya, Mazari, Mehran | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| Exploiting Soil Moisture, Precipitation, and Streamflow Observations to | Crow, W. T., Chen, F., Reichle, R. H., Xia, Y., Liu, Q. | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature, Heat Flux, Evapotranspiration, Snow, Canopy Characteristics, Leaf Characteristics, Vegetation Cover, Soil Moisture/Water Content, Soil Temperature, Albedo, Snow Water Equivalent, Runoff | |
| Spatial and Temporal Variability of Root-Zone Soil Moisture Acquired From Hydrologic Modeling and AirMOSS P-Band Radar | Crow, Wade T., Milak, Sushil, Moghaddam, Mahta, Tabatabaeenejad, Alireza, Jaruwatanadilok, Sermsak, Yu, Xuan, Shi, Yuning, Reichle, Rolf H., Hagimoto, Yutaka, Cuenca, Richard H. | Soil Moisture/Water Content, Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| A novel cross-satellite based assessment of the spatio-temporal development of a cyanobacterial harmful algal bloom | Page, Benjamin P., Kumar, Abhishek, Mishra, Deepak R. | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature, Heat Flux, Evapotranspiration, Snow, Canopy Characteristics, Leaf Characteristics, Vegetation Cover, Soil Moisture/Water Content, Soil Temperature, Albedo, Snow Water Equivalent, Runoff | |
| Confounding factors in determining causal soil moisture-precipitation | Tuttle, Samuel E., Salvucci, Guido D. | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| Diagnosing an artificial trend in NLDAS-2 afternoon precipitation | Ferguson, Craig R., Mocko, David M. | Heat Flux, Air Temperature, Skin Temperature, Specific Humidity, Water Vapor, Precipitation Rate, Snow/Ice, Evaporation, Latent Heat Flux, Latent Heat Flux, Sensible Heat Flux, Diffusion, Surface Winds, Wind Speed, U/V Wind Components, Wind Stress, Wind Stress, Surface Roughness, Planetary Boundary Layer Height, Ice Fraction, Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| Potential crop evapotranspiration and surface evaporation estimates via a gridded weather forcing dataset | Lewis, Clayton S., Allen, L. Niel | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| CFSv2-based sub-seasonal precipitation and temperature forecast skill over the contiguous United States | Tian, Di, Wood, Eric F., Yuan, Xing | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| Online mapping and forecasting of epidemics using open-source indicators. | Ray, Jaideep, Lefantzi, Sophia, Bauer, Joshua, Khalil, Mohammad, Rothfuss, Andrew, Cauthen, Katherine, Finley, Patrick, Smith, Halley | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| Gridded ensemble precipitation and temperature estimates for the contiguous United States | Newman, Andrew J., Clark, Martyn P., Craig, Jason, Nijssen, Bart, Wood, Andrew, Gutmann, Ethan, Mizukami, Naoki, Brekke, Levi, Arnold, Jeff R. | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| NLDAS views of North American 2011 extreme events | Rui, Hualan, Teng, Bill, Vollmer, Bruce, Mocko, David, Lei, GuangDih | Heat Flux, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Evapotranspiration, Rain, Snow, Canopy Characteristics, Leaf Characteristics, Vegetation Cover, Soil Moisture/Water Content, Soil Temperature, Albedo, Land Surface Temperature, Snow Water Equivalent, Runoff, Surface Pressure, Humidity, Surface Winds, Convection, Geopotential Height | |
| Drought in the US Great Plains (19802012): A sensitivity study using different methods for estimating potential evapotranspiration in the Palmer Drought Severity ... | Yuan, Shanshui, Quiring, Steven M. | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| Comparison of the NLDAS weather forcing model to agrometeorological measurements in the western United States | Lewis, Clayton S., Geli, Hatim M.E., Neale, Christopher M.U. | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature | |
| A multi-channel calibration method for multi-filter rotating shadow-band radiometer | Chen, Maosi, Davis, John, Tang, Hongzhao, Gao, Zhiqiang, Gao, Wei | Surface Pressure, Longwave Radiation, Shortwave Radiation, Surface Temperature, Evaporation, Humidity, Convection, Surface Winds, Rain, Land Surface Temperature |