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SeaWiFS Postlaunch Technical Report Series: The SeaWiFS Solar Radiation-Based Calibration and the Transfer-to-Orbit Experiment - Volume 5The solar radiation-based calibration (SRBC) of the Sea-viewing Wide Field-of-view Sensor (SeaWiFS) was performed on 1 November 1993. Measurements were made outdoors in the courtyard of the instrument manufacturer. SeaWiFS viewed the solar irradiance reflected from the sensor's diffuser in the same manner as viewed on orbit. The calibration included measurements using a solar radiometer designed to determine the transmittances of principal atmospheric constituents. The primary uncertainties in the outdoor measurements are the transmission of the atmosphere and the reflectance of the diffuser. Their combined uncertainty is about 5 or 6%. The SRBC also requires knowledge of the extraterrestrial solar spectrum. Four solar models are used. When averaged over the responses of the SeaWiFS bands, the irradiance models agree at the 3.6% level, with the greatest difference for SeaWiFS band 8. The calibration coefficients from the SRBC are lower than those from the laboratory calibration of the instrument in 1997. For a representative solar model, the ratios of the SRBC coefficients to laboratory values average 0.962 with a standard deviation of 0.012. The greatest relative difference is 0.946 for band 8. These values are within the estimated uncertainties of the calibration measurements. For the transfer-to-orbit experiment, the measurements in the manufacturer's courtyard are used to predict the digital counts from the instrument on its first day on orbit (August 1, 1997). This experiment requires an estimate of the relative change in the diffuser response for the period between the launch of the instrument and its first solar measurements on orbit (September 9, 1997). In relative terms, the counts from the instrument on its first day on orbit averaged 1.3% higher than predicted, with a standard deviation of 1.2% and a greatest difference of 2.4% or band 7. The estimated uncertainty for the transfer-to-orbit experiment is about 3 or 4%.
Document ID
19990053350
Acquisition Source
Goddard Space Flight Center
Document Type
Technical Memorandum (TM)
Authors
Hooker, Stanford B.
(General Sciences Corp. Beltsville, MD United States)
Firestone, Elaine R.
(General Sciences Corp. Beltsville, MD United States)
Barnes, Robert A.
(General Sciences Corp. Beltsville, MD United States)
Eplee, Robert E., Jr.
(General Sciences Corp. Beltsville, MD United States)
Biggar, Stuart F.
(Arizona Univ. Tucson, AZ United States)
Thome, Kurtis J.
(Arizona Univ. Tucson, AZ United States)
Zalewski, Edward F.
(Arizona Univ. Tucson, AZ United States)
Slater, Philip N.
(Arizona Univ. Tucson, AZ United States)
Holmes, Alan W.
(Santa Barbara Instrument Group Santa Barbara, CA United States)
Date Acquired
September 6, 2013
Publication Date
June 1, 1999
Publication Information
ISSN: 1522-8789
Subject Category
Oceanography
Report/Patent Number
NASA/TM-1999-206892/VOL5
Rept-99B00063
NAS 1.15:206892/VOL5
Report Number: NASA/TM-1999-206892/VOL5
Report Number: Rept-99B00063
Report Number: NAS 1.15:206892/VOL5
ISSN: 1522-8789
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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