Journal of Geophysical Research Atmospheres · 1990 · 296 citations · 19 references
EngineeringThermal SensingClimate ModelingOceanographyBulk‐skin Temperature DifferenceEarth ScienceOcean MonitoringMarine MeteorologyAtmospheric ScienceSatellite Remote SensingMeteorological MeasurementThermal Infrared Remote SensingMeteorologyRadiometric MeasurementsBuoy MeasurementsBulk TemperaturesGeographyRadiation MeasurementSea Surface TemperatureRadiometryOcean Remote SensingClimate DynamicsClimatologyTemperature MeasurementRemote SensingSatellite MeteorologyThermal Sensor
Satellite infrared sensors measure only ocean skin temperature, not the bulk sea surface temperature typically obtained from ships and buoys. The study aimed to compare skin and bulk temperatures by collecting simultaneous radiometric, subsurface, flux, and meteorological data in the North Atlantic. They parameterized the skin‑bulk temperature difference using heat and momentum fluxes, achieving 0.11 K (night) and 0.17 K (day) accuracy. The bulk‑skin temperature differences ranged from −1.0 to 1.0 K, with mean 0.1–0.2 K, varying by wind, heat flux, day/night, and cloud cover; strong correlations were found at larger scales, and the authors recommend nighttime satellite SST calibration with buoys and meteorological data.
Satellite infrared sensors only observe the temperature of the skin of the ocean rather than the bulk sea surface temperature (SST) traditionally measured from ships and buoys. In order to examine the differences and similarities between skin and bulk temperatures, radiometric measurements of skin temperature were made in the North Atlantic Ocean from a research vessel along with coincident measurements of subsurface bulk temperatures, radiative fluxes, and meteorological variables. Over the entire 6‐week data set the bulk‐skin temperature differences (ΔT) range between −1.0 and 1.0 K with mean differences of 0.1 to 0.2 K depending on wind and surface heat flux conditions. The bulk‐skin temperature difference varied between day and night (mean differences 0.11 and 0.30 K, respectively) as well as with different cloud conditions, which can mask the horizontal variability of SST in regions of weak horizontal temperature gradients. A coherency analysis reveals strong correlations between skin and bulk temperatures at longer length scales in regions with relatively weak horizontal temperature gradients. The skin‐bulk temperature difference is parameterized in terms of heat and momentum fluxes (or their related variables) with a resulting accuracy of 0.11 K and 0.17 K for night and daytime. A recommendation is made to calibrate satellite derived SST's during night with buoy measurements and the additional aid of meteorological variables to properly handle ΔT variations.
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Richard E. Payne · Journal of the Atmospheric Sciences · 1972 · 539 citations · Full text
The Temperature at the Ocean-Air Interface
Peter M. Saunders · Journal of the Atmospheric Sciences · 1967 · 341 citations