Air-sea fluxes with a focus on heat and momentum

dc.contributor.author Cronin, Meghan F.
dc.contributor.author Gentemann, Chelle L.
dc.contributor.author Edson, James B.
dc.contributor.author Ueki, Iwao
dc.contributor.author Bourassa, Mark A.
dc.contributor.author Brown, Shannon
dc.contributor.author Clayson, Carol A.
dc.contributor.author Fairall, Christopher W.
dc.contributor.author Farrar, J. Thomas
dc.contributor.author Gille, Sarah T.
dc.contributor.author Gulev, Sergey
dc.contributor.author Josey, Simon A.
dc.contributor.author Kato, Seiji
dc.contributor.author Katsumata, Masaki
dc.contributor.author Kent, Elizabeth
dc.contributor.author Krug, Marjolaine
dc.contributor.author Minnett, Peter J.
dc.contributor.author Parfitt, Rhys
dc.contributor.author Pinker, Rachel T.
dc.contributor.author Stackhouse, Paul W., Jr.
dc.contributor.author Swart, Sebastiaan
dc.contributor.author Tomita, Hiroyuki
dc.contributor.author Vandemark, Douglas
dc.contributor.author Weller, Robert A.
dc.contributor.author Yoneyama, Kunio
dc.contributor.author Yu, Lisan
dc.contributor.author Zhang, Dongxiao
dc.date.accessioned 2019-09-16T18:23:59Z
dc.date.available 2019-09-16T18:23:59Z
dc.date.issued 2019-07-31
dc.description © The Author(s), 2019. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Cronin, M. F., Gentemann, C. L., Edson, J., Ueki, I., Bourassa, M., Brown, S., Clayson, C. A., Fairall, C. W., Farrar, J. T., Gille, S. T., Gulev, S., Josey, S. A., Kato, S., Katsumata, M., Kent, E., Krug, M., Minnett, P. J., Parfitt, R., Pinker, R. T., Stackhouse, P. W., Jr., Swart, S., Tomita, H., Vandemark, D., Weller, R. A., Yoneyama, K., Yu, L., & Zhang, D. Air-sea fluxes with a focus on heat and momentum. Frontiers in Marine Science, 6, (2019): 430, doi:10.3389/fmars.2019.00430. en_US
dc.description.abstract Turbulent and radiative exchanges of heat between the ocean and atmosphere (hereafter heat fluxes), ocean surface wind stress, and state variables used to estimate them, are Essential Ocean Variables (EOVs) and Essential Climate Variables (ECVs) influencing weather and climate. This paper describes an observational strategy for producing 3-hourly, 25-km (and an aspirational goal of hourly at 10-km) heat flux and wind stress fields over the global, ice-free ocean with breakthrough 1-day random uncertainty of 15 W m–2 and a bias of less than 5 W m–2. At present this accuracy target is met only for OceanSITES reference station moorings and research vessels (RVs) that follow best practices. To meet these targets globally, in the next decade, satellite-based observations must be optimized for boundary layer measurements of air temperature, humidity, sea surface temperature, and ocean wind stress. In order to tune and validate these satellite measurements, a complementary global in situ flux array, built around an expanded OceanSITES network of time series reference station moorings, is also needed. The array would include 500–1000 measurement platforms, including autonomous surface vehicles, moored and drifting buoys, RVs, the existing OceanSITES network of 22 flux sites, and new OceanSITES expanded in 19 key regions. This array would be globally distributed, with 1–3 measurement platforms in each nominal 10° by 10° box. These improved moisture and temperature profiles and surface data, if assimilated into Numerical Weather Prediction (NWP) models, would lead to better representation of cloud formation processes, improving state variables and surface radiative and turbulent fluxes from these models. The in situ flux array provides globally distributed measurements and metrics for satellite algorithm development, product validation, and for improving satellite-based, NWP and blended flux products. In addition, some of these flux platforms will also measure direct turbulent fluxes, which can be used to improve algorithms for computation of air-sea exchange of heat and momentum in flux products and models. With these improved air-sea fluxes, the ocean’s influence on the atmosphere will be better quantified and lead to improved long-term weather forecasts, seasonal-interannual-decadal climate predictions, and regional climate projections. en_US
dc.description.sponsorship EK was funded by the NERC CLASS Program (NE/R015953/1). CLG was funded by NASA grant 80NSSC18K0837. SG was funded by MEGAGRANT P220 program (#14.W03.31.0006). en_US
dc.identifier.citation Cronin, M. F., Gentemann, C. L., Edson, J., Ueki, I., Bourassa, M., Brown, S., Clayson, C. A., Fairall, C. W., Farrar, J. T., Gille, S. T., Gulev, S., Josey, S. A., Kato, S., Katsumata, M., Kent, E., Krug, M., Minnett, P. J., Parfitt, R., Pinker, R. T., Stackhouse, P. W., Jr., Swart, S., Tomita, H., Vandemark, D., Weller, R. A., Yoneyama, K., Yu, L., & Zhang, D. (2019). Air-sea fluxes with a focus on heat and momentum. Frontiers in Marine Science, 6, 430. en_US
dc.identifier.doi 10.3389/fmars.2019.00430
dc.identifier.uri https://hdl.handle.net/1912/24557
dc.publisher Frontiers Media en_US
dc.relation.uri https://doi.org/10.3389/fmars.2019.00430
dc.rights Attribution 4.0 International *
dc.rights.uri http://creativecommons.org/licenses/by/4.0/ *
dc.subject Air-sea heat flux en_US
dc.subject Latent heat flux en_US
dc.subject Surface radiation en_US
dc.subject Ocean wind stress en_US
dc.subject Autonomous surface vehicle en_US
dc.subject OceanSITES en_US
dc.subject ICOADS en_US
dc.subject Satellite-based ocean monitoring system en_US
dc.title Air-sea fluxes with a focus on heat and momentum en_US
dc.type Article en_US
dspace.entity.type Publication
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