Sorry, you need to enable JavaScript to visit this website.

Sensitivity of near-surface meteorology to PBL schemes in WRF simulations in a port-industrial area with complex terrain

TitleSensitivity of near-surface meteorology to PBL schemes in WRF simulations in a port-industrial area with complex terrain
Publication TypeArticolo su Rivista peer-reviewed
Year of Publication2021
AuthorsFalasca, Serena, Gandolfi Ilaria, Argentini Stefania, Barnaba Francesca, Casasanta Giampietro, Di Liberto Luca, Petenko Igor, and Curci Gabriele
JournalAtmospheric Research
Volume264
Type of ArticleArticle
KeywordsAtmospheric circulation, Boundary layer flow, Boundary layers, Building environment parameterization, coastal zone, complex terrain, Complex terrains, Computer simulation, Horizontal resolution, industrial area, industrial district, Industrial research, Italy, jet flow, Meteorology, Model simulation, Near surfaces, numerical model, Numerical weather prediction models, parameterization, Planetary boundary layer scheme, Planetary boundary layers, port installation, Sensitivity analysis, Temperature, Tyrrhenian Coast, Weather forecasting, Weather research and forecasting models, wind, wind field
Abstract

Parameterizations of the Planetary Boundary Layer (PBL) embedded in numerical weather prediction models are crucial in the simulation of local meteorology and require a special investigation. In this study we evaluate simulations at 1 km horizontal resolution using six PBL schemes of the Weather Research and Forecasting model (WRF) by comparison to observations performed in a coastal port-industrial area (Civitavecchia) on the Tyrrhenian coast of Central Italy. During the measurement campaign (April 2016) three types of atmospheric circulation regimes were identified: “breeze”, “jet” and “synoptic”. Some generalizations can be inferred from the results, despite the variety of settings analyzed (two sites, three regimes in both day and night conditions). Our results show that the temperature simulation is much more sensitive to the configuration at night than during the day, especially on breeze days, when the occurrence of stable boundary layer is favored. For wind speed, non-local schemes are very similar to each other, unlike the local closure schemes. The use of the urban Building Environment Parameterization (BEP) significantly improves the simulation of the 2 m temperature during the “jet” evenings and nights, while it entails a further overestimation of the temperature during the “breeze” days leading to a reduction of the bias. © 2021 Elsevier B.V.

Notes

Cited by: 17

URLhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85114131346&doi=10.1016%2fj.atmosres.2021.105824&partnerID=40&md5=cca9e5e31d15b7b123a0cae013f40855
DOI10.1016/j.atmosres.2021.105824
Citation KeyFalasca2021