HR: 1340h
AN: H23D-1165 [Abstracts]
TI: Atmospheric water vapor over the subtropical oceans
AU: * Szczodrak, M
EM: goshka@rsmas.miami.edu
AF: Rosenstiel School of Marine and Atmospheric Science
University of Miami, Meteorology and Physical Oceanography
Rosenstiel School of Marine and Atmospheric Science
University of Miami
4600 Rickenbacker Causeway, Miami, FL 33149-1098
United States
AU: Minnett, P J
EM: pminnett@rsmas.miami.edu
AF: Rosenstiel School of Marine and Atmospheric Science
University of Miami, Meteorology and Physical Oceanography
Rosenstiel School of Marine and Atmospheric Science
University of Miami
4600 Rickenbacker Causeway, Miami, FL 33149-1098
United States
AU: Maillet, K A
EM: kmaillet@rsmas.miami.edu
AF: Rosenstiel School of Marine and Atmospheric Science
University of Miami, Meteorology and Physical Oceanography
Rosenstiel School of Marine and Atmospheric Science
University of Miami
4600 Rickenbacker Causeway, Miami, FL 33149-1098
United States
AU: Feltz, W F
EM: wayne.feltz@ssec.wisc.edu
AF: Cooperative Institute for Meteorological Studies
University of Wisconsin -Madison, Cooperative Institute for Meteorological Studies
University of Wisconsin -Madison
Space Science and Engineering Center
1225 W. Dayton Rm 235
University of Wisconsin - Madison, Madison, WI 53706
United States
AB:
Atmospheric water vapor is an important part of the Earth's hydrological cycle and plays a crucial role in many aspects of
the climate system. The main source of the atmospheric moisture are the oceans, but the information we have about the
distribution of atmospheric water vapor over the oceans is based on a relatively sparse distribution of radiosonde profiles,
or on satellite-based measurements from microwave radiometers. The Marine-Atmosphere Emitted Radiance Interferometer (M-AERI)
is a sea-going instrument that measures spectra of atmospheric infrared emission with ~10 minute temporal resolution. These
spectra can be used to retrieve profiles of temperature and humidity in the atmosphere, and can thus be employed for
continuous monitoring of the distribution of temperature and humidity in the marine atmosphere. M-AERI measurements can also
be used to validate both modeling results and satellite measurements. This study compares ship-based measurements of
atmospheric water vapor path from the M-AERI, radiosondes, and an upward-looking microwave radiometer. The data come from a
two-month deployment in the Caribbean Sea on the RCCL Explorer of the Seas and during a month long cruise on the USCGC Healy.
The measurements are compared with results from global circulation models NCEP and ECMWF. A comparison of satellite
retrieved profiles of atmospheric water vapor from the Atmospheric Infrared Sounder (AIRS) with M-AERI measurements is
discussed in a presentation in session A.19.
DE: 3360 Remote sensing
DE: 1655 Water cycles (1836)
DE: 0365 Troposphere--composition and chemistry
DE: 0394 Instruments and techniques
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting