Publication:
Oceanography time series reveals annual asynchrony input between oceanic and estuarine waters in Patagonian fjords

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cris.virtual.departmentFacultad de Ciencias
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dc.contributor.authorDr. Contreras-Quintana, Sergio
dc.contributor.authorBarrera, Facundo
dc.contributor.authorPérez-Santos, Iván
dc.contributor.authorDíaz, Patricio
dc.contributor.authorSilva, Nelson
dc.contributor.authorGarreaud, René
dc.contributor.authorMontero, Paulina
dc.contributor.authorHenríquez-Castillo, Carlos
dc.contributor.authorLinford, Pamela
dc.contributor.authorAmaya, Constanza
dc.contributor.authorAracena, Claudia
dc.contributor.authorPinilla, Elías
dc.contributor.authorAltamirano, Robinson
dc.contributor.authorVallejos, Luis
dc.contributor.authorPavez, Javiera
dc.contributor.authorMaulen, Juan
dc.date.accessioned2024-10-24T16:01:39Z
dc.date.available2024-10-24T16:01:39Z
dc.date.issued2021
dc.description.abstractThe postglacial Patagonian fjord system along the west coast of southern South America is one of the largest stretches of the southern hemisphere (SH) fjord belt, influenced by the SH westerly wind belt and continental freshwater input. This study reports a 3-year monthly time series (2017–2020) of physical and biogeochemical parameters obtained from the Reloncaví Marine Observatory (OMARE, Spanish acronym) at the northernmost embayment and fjord system of Patagonia. The main objective of this work was to understand the land–atmosphere–ocean interactions and to identify the mechanisms that modulate the density of phytoplankton. A key finding of this study was the seasonally varying asynchronous input of oceanic and estuarine water. Surface lower salinity and warmer estuarine water arrived in late winter to summer, contributing to water column stability, followed by subsurface higher salinity and less warmer oceanic water during fall–winter. In late winter 2019, an interannual change above the picnocline due to the record-high polarity of the Indian Ocean Dipole inhibited water column stability. The biogeochemical parameters (NO3−, NO2−, PO43−, Si(OH)4, pH, and dissolved oxygen) responded to the surface annual salinity variations, and oceanic water mass contributed greatly to the subsurface inorganic nutrient input. The water column N/P ratio indicated that no eutrophication occurred, even under intense aquaculture activity, likely because of the high ventilation dynamics of the Reloncaví Sound. Finally, a shift in phytoplankton composition, characterized by surface chlorophyll-a maxima in late winter and deepening of spring–summer blooms related to the physicochemical conditions of the water column, was observed. Our results support the ecosystem services provided by local oceanography processes in the north Patagonian fjords. Here, the anthropogenic impact caused by economic activities could be, in part, chemically reduced by the annual ventilation cycle mediated by the exchange of oceanic water masses into Patagonian fjords.
dc.identifier.doi10.1016/j.scitotenv.2021.149241
dc.identifier.urihttps://repositorio.ucsc.cl/handle/25022009/11556
dc.languageeng
dc.publisherElsevier
dc.rightsregistro bibliográfico
dc.subjectOceanography
dc.subjectPatagonian fjords
dc.subjectBiogeochemistry
dc.subjectAtmospheric mode
dc.subjectTime series
dc.subjectMarine observatory
dc.titleOceanography time series reveals annual asynchrony input between oceanic and estuarine waters in Patagonian fjords
dc.typeartículo
dspace.entity.typePublication
oairecerif.author.affiliationFacultad de Ciencias
oairecerif.author.affiliationFacultad de Ciencias
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