Skill Assessment of NCEP Three-Way Coupled HWRF–HYCOM–WW3 Modeling System: Hurricane Laura Case StudySource: Weather and Forecasting:;2022:;volume( 037 ):;issue: 008::page 1309Author:Hyun-Sook Kim
,
Jessica Meixner
,
Biju Thomas
,
Brandon G. Reichl
,
Bin Liu
,
Avichal Mehra
,
Alan Wallcraft
DOI: 10.1175/WAF-D-21-0191.1Publisher: American Meteorological Society
Abstract: In this research, we develop a three-way coupled prediction system to advance the realization of air–sea interaction processes. This study considers the sea-state-dependent momentum flux and nonlinear interactions between waves, winds, and ocean currents using the U.S. National Centers for Environmental Prediction’s operational Hurricane Weather Research and Forecasting (HWRF)-Hybrid Coordinate Ocean Model (HYCOM) coupled modeling system. Wave feedback is performed through the air–sea interaction module (ASIM) added to WAVEWATCH III (WW3), which employs the wave boundary layer to parameterize unresolved high-frequency tail spectra by using the mean flux profile constructed from the conservation of total momentum and wave energy. The atmospheric momentum flux is updated using the sea-state-dependent Charnock coefficient, wave-induced stress, and ocean surface currents before being passed to HYCOM. Wave coupling in HYCOM includes Coriolis–Stokes forcing to simulate wave–current interactions and to enhance mixing to account for Langmuir turbulence. The fully coupled system is tested for Hurricane Laura (2020). This paper examines the forecast skills of the individual component models by comparing simulations with observations. Without skill degradation of HYCOM and WW3, the three-way coupling method improves the track and intensity forecast skills by 5% each over those of HWRF-HYCOM coupling, and 27% and 17% over those of uncoupling, respectively. Importantly, this fully coupled system outperforms rapid intensification by reducing the intensification magnitude and matching the occurrence and duration. Overall, the forecast performance evaluated in the study establishes a baseline for the next-generation hurricane prediction system.
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| contributor author | Hyun-Sook Kim | |
| contributor author | Jessica Meixner | |
| contributor author | Biju Thomas | |
| contributor author | Brandon G. Reichl | |
| contributor author | Bin Liu | |
| contributor author | Avichal Mehra | |
| contributor author | Alan Wallcraft | |
| date accessioned | 2023-04-12T18:49:25Z | |
| date available | 2023-04-12T18:49:25Z | |
| date copyright | 2022/08/01 | |
| date issued | 2022 | |
| identifier other | WAF-D-21-0191.1.pdf | |
| identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4290305 | |
| description abstract | In this research, we develop a three-way coupled prediction system to advance the realization of air–sea interaction processes. This study considers the sea-state-dependent momentum flux and nonlinear interactions between waves, winds, and ocean currents using the U.S. National Centers for Environmental Prediction’s operational Hurricane Weather Research and Forecasting (HWRF)-Hybrid Coordinate Ocean Model (HYCOM) coupled modeling system. Wave feedback is performed through the air–sea interaction module (ASIM) added to WAVEWATCH III (WW3), which employs the wave boundary layer to parameterize unresolved high-frequency tail spectra by using the mean flux profile constructed from the conservation of total momentum and wave energy. The atmospheric momentum flux is updated using the sea-state-dependent Charnock coefficient, wave-induced stress, and ocean surface currents before being passed to HYCOM. Wave coupling in HYCOM includes Coriolis–Stokes forcing to simulate wave–current interactions and to enhance mixing to account for Langmuir turbulence. The fully coupled system is tested for Hurricane Laura (2020). This paper examines the forecast skills of the individual component models by comparing simulations with observations. Without skill degradation of HYCOM and WW3, the three-way coupling method improves the track and intensity forecast skills by 5% each over those of HWRF-HYCOM coupling, and 27% and 17% over those of uncoupling, respectively. Importantly, this fully coupled system outperforms rapid intensification by reducing the intensification magnitude and matching the occurrence and duration. Overall, the forecast performance evaluated in the study establishes a baseline for the next-generation hurricane prediction system. | |
| publisher | American Meteorological Society | |
| title | Skill Assessment of NCEP Three-Way Coupled HWRF–HYCOM–WW3 Modeling System: Hurricane Laura Case Study | |
| type | Journal Paper | |
| journal volume | 37 | |
| journal issue | 8 | |
| journal title | Weather and Forecasting | |
| identifier doi | 10.1175/WAF-D-21-0191.1 | |
| journal fristpage | 1309 | |
| journal lastpage | 1331 | |
| page | 1309–1331 | |
| tree | Weather and Forecasting:;2022:;volume( 037 ):;issue: 008 | |
| contenttype | Fulltext |