Influence of estuarine tidal mixing on structure and spatial scales of large river plumes
-
Published:2020-07-03
Issue:4
Volume:16
Page:781-798
-
ISSN:1812-0792
-
Container-title:Ocean Science
-
language:en
-
Short-container-title:Ocean Sci.
Author:
Osadchiev AlexanderORCID, Medvedev IgorORCID, Shchuka Sergey, Kulikov Mikhail, Spivak EduardORCID, Pisareva MariaORCID, Semiletov Igor
Abstract
Abstract. The Yenisei and Khatanga rivers are among the largest estuarine rivers
that inflow to the Arctic Ocean. Discharge of the Yenisei River is
1 order of magnitude larger than that of the Khatanga River. However,
spatial scales of buoyant plumes formed by freshwater runoff from the
Yenisei and Khatanga gulfs are similar. This feature is caused by
different tidal forcing in these estuaries, which have similar sizes,
climate conditions, and geomorphology. The Khatanga discharge
experiences strong tidal forcing that causes formation of a diluted
bottom-advected plume in the Khatanga Gulf. This deep and
weakly stratified plume has a small freshwater fraction and
therefore occupies a large area on the shelf. The Yenisei Gulf, on
the other hand, is a salt-wedge estuary that receives a large
freshwater discharge and is less affected by tidal mixing due to low
tidal velocities. As a result, the low-salinity and
strongly stratified Yenisei plume has a large freshwater fraction and
its horizontal size is relatively small. The results show that
estuarine tidal mixing determines freshwater fraction in these river
plumes, which governs their depth and area after they spread from
estuaries to coastal sea. Therefore, the influence of estuarine mixing on
spatial scales of a large river plume can be of the same importance as
the roles of river discharge rate and wind forcing. In particular,
plumes with similar areas can be formed by rivers with significantly
different discharge rates, as illustrated by the Yenisei and Khatanga
plumes.
Funder
Russian Foundation for Basic Research Russian Science Foundation
Publisher
Copernicus GmbH
Subject
Cell Biology,Developmental Biology,Embryology,Anatomy
Reference74 articles.
1. AOTIM: https://www.esr.org/research/polar-tide-models/list-of-polar-tide-models/aotim-5/
last access: 28 October 2019. 2. Burchard, H.: A universal law of estuarine mixing, J. Phys. Oceanogr., 50,
81–93, https://doi.org/10.1175/JPO-D-19-0014.1, 2020. 3. Burchard, H., Bolding, K., Feistel, R., Gräwe, U., Klingbeil, K.,
MacCready, P., Mohrholz, V., Umlauf, L., and van der Lee, E. M.: The Knudsen
theorem and the Total Exchange Flow analysis framework applied to the Baltic
Sea, Prog. Oceanogr., 165, 268–286, https://doi.org/10.1016/j.pocean.2018.04.004,
2018. 4. Carmack, E. C.: The freshwater budget of the Arctic Ocean: Sources, storage
and sinks, in: The freshwater budget of the Arctic Ocean, edited by:
Lewis, E. L. and Jones, E. P., Kluwer, Dordrecht, Netherlands, 91–126, 2000. 5. Carmack, E. C., Yamamoto–Kawai, M., Haine, T. W., Bacon, S., Bluhm, B. A.,
Lique, C., Melling, H., Polyakov, I. V., Straneo, F., Timmermans, M.-L., and
Williams, W. J.: Freshwater and its role in the Arctic Marine System:
Sources, disposition, storage, export, and physical and biogeochemical
consequences in the Arctic and global oceans, J. Geophys. Res.-Biogeo., 121, 675–717, https://doi.org/10.1002/2015JG003140, 2016.
Cited by
35 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|