Wave-induced sediment and rhodolith mobility on a narrow insular shelf dominated by wave variability (Fernando de Noronha Archipelago, Brazil)

This study combines numerical modeling and empirical equations to define spatial fields of wave-induced sediment and rhodolith mobility in a narrow insular shelf that is subject to a seasonal wave regime: the Fernando de Noronha insular shelf. From analyses of the annual, summer and winter wave clim...

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Published inContinental shelf research Vol. 235; p. 104662
Main Authors Ambrosio, Bruna Garcia, Takase, Leonardo Silveira, Stein, Luiza Paschoal, Costa, Mirella Borba, Siegle, Eduardo
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 15.02.2022
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ISSN0278-4343
1873-6955
DOI10.1016/j.csr.2022.104662

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Abstract This study combines numerical modeling and empirical equations to define spatial fields of wave-induced sediment and rhodolith mobility in a narrow insular shelf that is subject to a seasonal wave regime: the Fernando de Noronha insular shelf. From analyses of the annual, summer and winter wave climates, we noticed an intense directional variability in swell waves coming predominantly from opposing directions between the studied seasons (northern swell in summer and southern swell in winter), reflecting higher wave energy on the north coast during summer and lower energy during winter. The longitudinal transport at the northern coast, which is predominantly oriented to the southwest, is also higher in the summer months and lower in the rest of the year. To describe the spatial variation in wave-induced mobility under summer and winter wave conditions, we consider empirical sediment movement equations, based on mean grain size and density values. Carbonate bioclastic sediments, which are predominant in the Fernando de Noronha shelf, are remobilized by waves throughout the entire shelf. However, in the nearshore zone, this movement occurs intensely for all sizes. The depth and shelf side affected by wave-induced mobility vary according to the wave climate variability that determines the direction and type of wave prevailing in the regime. When swell waves come from the north (summer scenarios), mobility is greater mainly on the northern shelf; however, when trade wind waves come from the southeast and swell waves come from the south (winter scenarios), greater movement is produced on the south face. Wave-induced sediment mobility occurs at depths of up to 60 m, near the shelf break, indicating the importance of the shelf morphology. The movement of rhodoliths, which presents a lower density and larger diameter than the sediments, eventually occurs under extreme wave conditions up to depths of approximately 30 m in areas that vary seasonally around the island according to the predominant wave direction. These characteristics are favorable to rhodolith development. With our results, we hope to better understand the wave action on the bottoms of high-energy island shelves by identifying the sediment movement patterns attributed to wave climate variability and morphological characteristics of the shelf. •We assess sediment and rhodolith mobility potential by waves on a narrow insular shelf.•Mobility potential is directly related to shelf morphology and incoming waves.•Seasonal wave climate defines mobility potential at each side of the insular shelf.•Rhodoliths can be mobilized under more energetic wave conditions.
AbstractList This study combines numerical modeling and empirical equations to define spatial fields of wave-induced sediment and rhodolith mobility in a narrow insular shelf that is subject to a seasonal wave regime: the Fernando de Noronha insular shelf. From analyses of the annual, summer and winter wave climates, we noticed an intense directional variability in swell waves coming predominantly from opposing directions between the studied seasons (northern swell in summer and southern swell in winter), reflecting higher wave energy on the north coast during summer and lower energy during winter. The longitudinal transport at the northern coast, which is predominantly oriented to the southwest, is also higher in the summer months and lower in the rest of the year. To describe the spatial variation in wave-induced mobility under summer and winter wave conditions, we consider empirical sediment movement equations, based on mean grain size and density values. Carbonate bioclastic sediments, which are predominant in the Fernando de Noronha shelf, are remobilized by waves throughout the entire shelf. However, in the nearshore zone, this movement occurs intensely for all sizes. The depth and shelf side affected by wave-induced mobility vary according to the wave climate variability that determines the direction and type of wave prevailing in the regime. When swell waves come from the north (summer scenarios), mobility is greater mainly on the northern shelf; however, when trade wind waves come from the southeast and swell waves come from the south (winter scenarios), greater movement is produced on the south face. Wave-induced sediment mobility occurs at depths of up to 60 m, near the shelf break, indicating the importance of the shelf morphology. The movement of rhodoliths, which presents a lower density and larger diameter than the sediments, eventually occurs under extreme wave conditions up to depths of approximately 30 m in areas that vary seasonally around the island according to the predominant wave direction. These characteristics are favorable to rhodolith development. With our results, we hope to better understand the wave action on the bottoms of high-energy island shelves by identifying the sediment movement patterns attributed to wave climate variability and morphological characteristics of the shelf. •We assess sediment and rhodolith mobility potential by waves on a narrow insular shelf.•Mobility potential is directly related to shelf morphology and incoming waves.•Seasonal wave climate defines mobility potential at each side of the insular shelf.•Rhodoliths can be mobilized under more energetic wave conditions.
ArticleNumber 104662
Author Stein, Luiza Paschoal
Siegle, Eduardo
Takase, Leonardo Silveira
Ambrosio, Bruna Garcia
Costa, Mirella Borba
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  givenname: Leonardo Silveira
  surname: Takase
  fullname: Takase, Leonardo Silveira
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  givenname: Luiza Paschoal
  surname: Stein
  fullname: Stein, Luiza Paschoal
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  givenname: Mirella Borba
  surname: Costa
  fullname: Costa, Mirella Borba
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  email: esiegle@usp.br
  organization: Instituto Oceanográfico, Universidade de São Paulo, Praça do Oceanográfico, 191, 05508-120, São Paulo, SP, Brazil
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crossref_primary_10_1016_j_rsma_2023_103295
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Keywords Sediment mobility
Wave modeling
Wave climate
Rhodoliths
Insular shelf
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Snippet This study combines numerical modeling and empirical equations to define spatial fields of wave-induced sediment and rhodolith mobility in a narrow insular...
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elsevier
SourceType Enrichment Source
Index Database
Publisher
StartPage 104662
SubjectTerms Insular shelf
Rhodoliths
Sediment mobility
Wave climate
Wave modeling
Title Wave-induced sediment and rhodolith mobility on a narrow insular shelf dominated by wave variability (Fernando de Noronha Archipelago, Brazil)
URI https://dx.doi.org/10.1016/j.csr.2022.104662
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