HR: 1400h
AN: OS23E-13 [Abstracts]
TI: Nearshore Processes, Currents and Directional Wave Spectra Monitoring Using Coherent and Non-coherent Imaging Radars
AU: * Trizna, D
EM: dennis@isr-sensing.com
AF: Imaging Science Research, Inc, 6103B Virgo Court, Burke, VA 22015-3249, United States
AU: Hathaway, K
EM: Kent..K.Hathaway@erdc.usace.army.mil
AB:
Two new radar systems have been developed for real-time measurement of near-shore processes, and results
are presented for measurements of ocean wave spectra, near-shore sand bar structure, and ocean currents. The
first is a non-coherent radar based on a modified version of the Sitex radar family, with a data acquisition system
designed around an ISR digital receiver card. The card operates in a PC computer with inputs from a Sitex radar
modified for extraction of analogue signals for digitization. Using a 9' antenna and 25 kW transmit power system,
data were collected during 2007 at the U.S. Army Corps of Engineers Field Research Facility (FRF), Duck, NC
during winter and spring of 2007. The directional wave spectrum measurements made are based on using a
sequence of 64 to 640 antenna rotations to form a snapshot series of radar images of propagating waves. A
square window is extracted from each image, typically 64 x 64 pixels at 3-m resolution. Then ten sets of 64
windows are submitted to a three-dimensional Fast Fourier Transform process to generate radar image spectra
in the frequency-wavenumber space. The relation between the radar image spectral intensity and wave spectral
intensity derived from the FRF pressure gauge array was used for a test set of data, in order to establish a
modulation transfer function (MTF) for each frequency component. For 640 rotations, 10 of such spectra are
averaged for improved statistics. The wave spectrum so generated was compared for extended data sets beyond
those used to establish the MTF, and those results are presented here. Some differences between the radar and
pressure sensor data that are observed are found to be due to the influence of the wind field, as the radar echo
image weakens for light winds. A model is developed to account for such an effect to improve the radar estimate
of the directional wave spectrum. The radar ocean wave imagery is severely influenced only by extremely heavy
rain-fall rates, so that acceptable quality were assured for most weather conditions on a diurnal basis using a
modest tower height.
A new coherent microwave radar has recently been developed by ISR and preliminary testing was conducted in
the spring of 2007. The radar is based on the Quadrapus four-channel transceiver card, mixed up to microwave
frequencies for pulse transmission and back down to base-band for reception. We use frequency-modulated
pulse compression methods to obtain 3-m spatial resolution. A standard marine radar pedestal is used to house
the microwave components, and rotating radar PPI images similar to marine radar images are obtained. Many of
the methods used for the marine radar system have been transferred to the coherent imaging radar. New
processing methods applied to the coherent data allow summing of radial velocity images to map mean currents
in the near shore zone, such as rip currents. A pair of such radars operating with a few hundred meter separation
can be used to map vector currents continuously in the near shore zone and in harbors on a timely basis. Results
of preliminary testing of the system will be presented.
UR: http:www.isr-sensing.com
DE: 4217 Coastal processes
DE: 4512 Currents
DE: 4528 Fronts and jets
DE: 4560 Surface waves and tides (1222)
DE: 4594 Instruments and techniques
SC: Ocean Sciences [OS]
MN: 2007 Joint Assembly