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Water Raman normalization of airborne laser fluorosensor measurements - A computer model studyThe technique for normalizing airborne lidar measurements of chlorophyll fluoresence by the water Raman scattering signal is investigated for laser-excitation wavelengths of 480 and 532 nm using a semianalytic Monte Carlo methodology (SALMON). The signal-integration depth for chlorophyll fluorescence Z(90,F), is found to be insensitive to excitation wavelength and ranges from a maximum of 4.5 m in clearest waters to less than 1 m at a chlorophyll concentration of 20 microgram/liter. For excitation at 532 nm, the signal-integration depth for Raman scattering, Z(90,R), is comparable to Z(90,F). For excitation at 480 nm, Z(90,R) is four times as large as Z(90,F) in clearest waters but nearly equivalent at chlorophyll concentrations greater than 2-3 microgram/liter. Absolute signal levels are stronger with excitation at 480 nm than with excitation at 532 nm, but this advantage must be weighed against potential ambiguities resulting from different integration depths for the fluorescence and Raman scattering signals in clearer waters. To the precision of the simulations, Raman normalization produces effectively linear response to chlorophyll concentration for both excitation wavelengths.
Document ID
19820064060
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Poole, L. R.
(NASA Langley Research Center Hampton, VA, United States)
Esaias, W. E.
(NASA Langley Research Center Hampton, VA, United States)
Date Acquired
August 10, 2013
Publication Date
October 15, 1982
Publication Information
Publication: Applied Optics
Volume: 21
Subject Category
Instrumentation And Photography
Accession Number
82A47595
Distribution Limits
Public
Copyright
Other

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