Evaluation and Validation of HF Radar Swell and Wind wave Inversion Method

Author:

Al-Attabi Zaid R.12,Voulgaris George1,Conley Daniel C.3

Affiliation:

1. a School of the Earth, Ocean and Environment, University of South Carolina, Columbia, South Carolina, USA

2. b Marine Science Center, University of Basrah, Al Basrah, Iraq, zrahman@geol.sc.edu; gvoulgaris@geol.sc.edu

3. c School of Biological and Marine Sciences, Plymouth University, Plymouth, United Kingdom, daniel.conley@plymouth.ac.uk

Abstract

AbstractAn examination of the applicability and accuracy of the empirical wave inversion method in the presence of swell waves is presented. The ability of the method to invert Doppler spectra to wave directional spectra and bulk wave parameters is investigated using one-month data from a 12 MHz WERA High Frequency (HF) radar system and in-situ data from a wave buoy. Three different swell inversion models are evaluated: LPM (Lipa et al. 1981), WFG (Wang et al. 2016) and EMP, an empirical approach introduced in this study. The swell inversions were carried out using two different scenarios: (1) a single beam from a single radar site and two beams from a single radar site, and (2) two beams from two sites (a single beam per site) intersecting each other at the buoy location. The LPM method utilized using two beams from two different sites was found to provide the best estimations of swell parameters (swell height RMS error 0.24m) and showed a good correlation with the partitioned swell in-situ values. For the wind wave inversion, the empirical method presented here is used with an empirical coefficient of 0.3 which seems to be suitable for universal application for all radar operating frequencies. The inverted swell parameters are used to create a swell spectrum which is combined with the inverted wind wave spectrum to create a full directional wave spectrum. The wave inversion method presented in this study although empirical does not require calibration with in situ data and can be applied to any beam forming system and operating frequency.

Publisher

American Meteorological Society

Subject

Atmospheric Science,Ocean Engineering

Reference150 articles.

1. Bulk versus spectral wave parameters: Implications on stokes drift estimates, regional wave modeling, and HF radars applications;Kumar;J. Phys. Oceanogr.,2017

2. Directional spreading of waves in the nearshore;Herbers;J. Geophys. Res.,1999

3. Theory of HF and VHF propagation across the rough sea, 1, The effective surface impedance for a slightly rough highly conducting medium at grazing incidence;Barrick;Radio Sci.,1971

4. An empirical method to derive ocean waves from second-order Bragg scattering: Prospects and limitations;Gurgel;IEEE J. Oceanic Eng.,2006

5. A year-long assessment of wave measurements retrieved from an HF radar network in the Gulf of Naples (Tyrrhenian Sea, Western Mediterranean Sea);Saviano;J. Oper. Oceanogr,2019

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