Change search
Link to record
Permanent link

Direct link
Publications (10 of 13) Show all publications
Massei, K., Souza, M. C., da Silva, R. M., Costa, D. d., Vianna, P. C., Crispim, M. C., . . . Guimaraes Santos, C. A. (2023). Analysis of marine diversity and anthropogenic pressures on Seixas coral reef ecosystem (northeastern Brazil). Science of the Total Environment, 905, Article ID 166984.
Open this publication in new window or tab >>Analysis of marine diversity and anthropogenic pressures on Seixas coral reef ecosystem (northeastern Brazil)
Show others...
2023 (English)In: Science of the Total Environment, ISSN 0048-9697, E-ISSN 1879-1026, Vol. 905, article id 166984Article in journal (Refereed) Published
Abstract [en]

Coral reefs, vital and ecologically significant ecosystems, are among the most jeopardized marine environments in the Atlantic Ocean, particularly along the northeastern coast of Brazil. The persistent lack of effective management and conservation has led to fragmented information on reef use and pressures, hindering the under-standing of these ecosystems' health. Major difficulties and challenges include inadequate data, diverse anthropogenic pressures, and the complex interaction between marine species. This study sought to bridge this knowledge gap by conducting a comprehensive analysis of marine diversity and anthropogenic pressures, specifically focusing on Seixas coral reef near Joa similar to o Pessoa city, an area notably impacted by tourism. Utilizing 25 monitoring transects, subdivided into 1 m2 quadrants, the marine diversity was meticulously evaluated through innovative procedures including (a) sedimentological and geochemical field surveys, (b) application of Shannon -Weaver diversity and Simpson dominance indices, (c) cluster analysis, (d) species identification of macroalgae, coral, and fish, and (e) an examination of anthropogenic interactions and pressures on the coral reef. The assessment encompassed three distinct zones: Back Reef, Reef Top, and Fore Reef, and identified a total of 25 species across 15 genera and 10 fish families. The findings revealed the prevalence of brown macroalgae, fish, and coral, with heightened abundance of red macroalgae in the Fore Reef, which also exhibited the greatest diversity (2.816) and dominance (0.894). Original achievements include the identification of specific spatial variations, recognition of the anthropogenic factors leading to ecological changes, and the formulation of evidence-based recommendations. The study concludes that escalating urbanization and burgeoning daily tourist visits to the reef have exacerbated negative impacts on Seixas coral reef's marine ecosystem. These insights underscore the urgent need for strategic planning and resource management to safeguard the reef's biodiversity and ecological integrity.

Keywords
Coral reefs, Reef fishes, Macroalgae, Biodiversity, Brazilian coast, Tourism
National Category
Earth and Related Environmental Sciences Ecology
Identifiers
urn:nbn:se:su:diva-223750 (URN)10.1016/j.scitotenv.2023.166984 (DOI)001088883000001 ()37704134 (PubMedID)2-s2.0-85172008250 (Scopus ID)
Available from: 2023-11-17 Created: 2023-11-17 Last updated: 2025-01-31Bibliographically approved
Saliba, B. M., Eggertsen, L., Mendes, T. C., Marconi, M., Ferreira, C. E. L. & Giglio, V. J. (2023). Interactions of Divers with Reef Biota are More Frequent Among Snorkelers Than Scuba Divers And Increase During Sea Turtle Watching. Tourism in Marine Environments, 17(4), 249-263
Open this publication in new window or tab >>Interactions of Divers with Reef Biota are More Frequent Among Snorkelers Than Scuba Divers And Increase During Sea Turtle Watching
Show others...
2023 (English)In: Tourism in Marine Environments, ISSN 1544-273X, E-ISSN 2169-0197, Vol. 17, no 4, p. 249-263Article in journal (Refereed) Published
Abstract [en]

Snorkeling is a popular recreational activity in shallow water of coastal ecosystems. Because snorkeling is commonly assumed to cause comparatively fewer potential impacts to the marine biota than scuba diving, management is generally focused on the latter. We investigated the behavior of snorkelers aiming to quantify their interactions with benthic reef sessile organisms and sea turtles. We also compared the behavior of snorkelers with scuba divers to assess which group of divers is more damaging to the reef biota. Finally, we compared the use of conventional and nonconventional sampling approaches through analysis of social media images to evaluate the reliability of different approaches to investigate the behavior of underwater recreationists. Snorkelers were observed during 5 min; their interactions with benthic organisms were recorded and compared with scuba diver’s behavior. Snorkelers’observations were carried out with and without the presence of sea turtles and compared with videos from social media. Videos were extracted from YouTube through a search using keywords and analyzed to quantify the number of interactions of divers with the benthic organisms. Snorkelers caused 33% more contacts and 70% more damage to benthic reef organisms than scuba divers. Most interactions were over the zoanthid Palythoa caribaeorum, which received ~80% of contacts and ~30% of damage. The contact rate of snorkelers with benthic organisms increased 5.5-fold when they interacted with sea turtles. Snorkelers sampled through direct observation accounted for more contacts with benthic reef organisms than those observed in social media videos, whereas higher rates of behavioral disturbance to sea turtles were observed in snorkelers sampled in social media videos. As the videos from social media focused on sea turtle watching, they overestimated the amount of snorkelers–sea turtles’ interactions but underestimated the amount of contacts with benthic organisms. Our results revealed that snorkeling in shallow waters <2 m deep may represent a considerable amount of impacts to reef benthic sessile organisms and such impacts significantly increase during sea turtle watching.

Keywords
Diving impact, Marine protected area, Sea turtle watching, Social media, Southwestern Atlantic, Subtropical reef, Tourism management
National Category
Ecology
Identifiers
urn:nbn:se:su:diva-234525 (URN)10.3727/154427322X16710976626847 (DOI)2-s2.0-85151924499 (Scopus ID)
Available from: 2024-10-16 Created: 2024-10-16 Last updated: 2024-10-16Bibliographically approved
Eggertsen, L., Goodell, W., Cordeiro, C. A. M., Cossa, D., de Lucena, M., Berkström, C., . . . Gullström, M. (2022). Where the grass is greenest in seagrass seascapes depends on life history and simple species traits of fish. Estuarine, Coastal and Shelf Science, 266, Article ID 107738.
Open this publication in new window or tab >>Where the grass is greenest in seagrass seascapes depends on life history and simple species traits of fish
Show others...
2022 (English)In: Estuarine, Coastal and Shelf Science, ISSN 0272-7714, E-ISSN 1096-0015, Vol. 266, article id 107738Article in journal (Refereed) Published
Abstract [en]

Tropical seagrass meadows are critical habitats for many fish species, yet few studies have investigated the influence of multiple scale-dependent factors and marine protected areas on seagrass fish species of differing life histories. We assessed the influence of fine-scale seagrass meadow characteristics and seascape-scale variables on the abundance of fish in a seagrass-dominated seascape in the Bazaruto Archipelago, Mozambique, particularly examining patterns of nursery- vs. resident species as well as mobile- vs. sedentary species. We found that fish distribution patterns in this seagrass-dominated seascape were dependent on species’ life history characteristics; nursery taxa showed lower abundance in seagrass meadows further from adult reef habitats, while resident species within seagrass meadows occurred in higher abundances far from reefs. For taxa utilizing both mangroves and seagrass meadows as nursery habitat, proximity to mangroves was an important factor. Fish abundances were generally influenced by variables at the seascape scale (km), while sedentary species were predominantly influenced by area variables, and smaller seascapes (<500 m in radius) better explained distribution patterns. The influence of marine protected areas was taxon-specific, with the strongest effects of protection on resident species. Our results indicate that protection efforts in seagrass-dominated seascapes can have varying impacts on fish distribution, depending on the life history of the species present, and the geographical placement of the reserve within the seascape. Further, we suggest that simple species attributes can be utilised to describe generalized abundance patterns of fish in seagrass seascapes.

Keywords
Seagrass, Reef fish, Seascape ecology, Boosted regression trees, Nursery habitat, Marine protected areas
National Category
Biological Sciences Earth and Related Environmental Sciences
Identifiers
urn:nbn:se:su:diva-204998 (URN)10.1016/j.ecss.2021.107738 (DOI)000789695100002 ()2-s2.0-85122790688 (Scopus ID)
Available from: 2022-05-24 Created: 2022-05-24 Last updated: 2025-01-31Bibliographically approved
Fulton, C. J., Berkström, C., Wilson, S. K., Abesamis, R. A., Bradley, M., Åkerlund, C., . . . Tinkler, P. (2020). Macroalgal meadow habitats support fish and fisheries in diverse tropical seascapes. Fish and Fisheries, 21(4), 700-717
Open this publication in new window or tab >>Macroalgal meadow habitats support fish and fisheries in diverse tropical seascapes
Show others...
2020 (English)In: Fish and Fisheries, ISSN 1467-2960, E-ISSN 1467-2979, Vol. 21, no 4, p. 700-717Article in journal (Refereed) Published
Abstract [en]

Canopy-forming macroalgae can construct extensive meadow habitats in tropical seascapes occupied by fishes that span a diversity of taxa, life-history stages and ecological roles. Our synthesis assessed whether these tropical macroalgal habitats have unique fish assemblages, provide fish nurseries and support local fisheries. We also applied a meta-analysis of independent surveys across 23 tropical reef locations in 11 countries to examine how macroalgal canopy condition is related to the abundance of macroalgal-associated fishes. Over 627 fish species were documented in tropical macroalgal meadows, with 218 of these taxa exhibiting higher local abundance within this habitat (cf. nearby coral reef) during at least one life-history stage. Major overlap (40%-43%) in local fish species richness among macroalgal and seagrass or coral reef habitats suggest macroalgal meadows may provide an important habitat refuge. Moreover, the prominence of juvenile fishes suggests macroalgal meadows facilitate the triphasic life cycle of many fishes occupying diverse tropical seascapes. Correlations between macroalgal canopy structure and juvenile abundance suggests macroalgal habitat condition can influence levels of replenishment in tropical fish populations, including the majority of macroalgal-associated fishes that are targeted by commercial, subsistence or recreational fisheries. While many macroalgal-associated fishery species are of minor commercial value, their local importance for food and livelihood security can be substantial (e.g. up to 60% of landings in Kenyan reef fisheries). Given that macroalgal canopy condition can vary substantially with sea temperature, there is a high likelihood that climate change will impact macroalgal-associated fish and fisheries.

Keywords
coral reef, nursery, ontogenetic migration, recruitment, Sargassum, seagrass
National Category
Agriculture, Forestry and Fisheries
Identifiers
urn:nbn:se:su:diva-183973 (URN)10.1111/faf.12455 (DOI)000541675900002 ()
Available from: 2020-08-31 Created: 2020-08-31 Last updated: 2025-02-07Bibliographically approved
Eggertsen, M., Chacin, D. H., van Lier, J., Eggertsen, L., Fulton, C. J., Wilson, S., . . . Berkström, C. (2020). Seascape Configuration and Fine-Scale Habitat Complexity Shape Parrotfish Distribution and Function across a Coral Reef Lagoon. Diversity, 12(10), Article ID 391.
Open this publication in new window or tab >>Seascape Configuration and Fine-Scale Habitat Complexity Shape Parrotfish Distribution and Function across a Coral Reef Lagoon
Show others...
2020 (English)In: Diversity, E-ISSN 1424-2818, Vol. 12, no 10, article id 391Article in journal (Refereed) Published
Abstract [en]

Structural complexity spanning fine to broad spatial scales can influence the distribution and activity of key organisms within marine ecosystems. However, the relative importance of hard (e.g., corals) and/or soft (e.g., macroalgae) structural complexity for marine organisms is often unclear. This study shows how both broad-scale (seascape configuration of coral structure) and fine-scale habitat complexity (structure height, number of holes, and presence of macroalgae) can influence the abundance and spatial ecology of reef fish. Underwater visual census of fish, surveys of habitats, remote underwater videos, and behavioral observations by following individual fish were used to quantify fine-scale habitat characteristics (e.g., complexity, coral structure height, macroalgae presence) and the abundance, size structure, and behavior (rates of herbivory, tortuosity ratios and total distance travelled) of abundant parrotfish. Both seascape configuration and macroalgae influenced the patterns of fish abundance and rates of herbivory. However, these relationships varied with trophic groups and ontogenetic stages. Abundance of adult and intermediate-phase parrotfishes was positively influenced by densely aggregated coral structures, whereas juvenile abundance was positively influenced by the presence of macroalgae. Foraging path and bite rates of an abundant parrotfish, Chlorurus spilurus, were not influenced by coral structure configuration or height, but the presence of macroalgae increased the bite rates of all juvenile parrotfish. Our results suggest that a combination of seascape configuration, fine-scale habitat complexity, and microhabitat selectivity influence reef fish community structure and foraging behavior, thus altering herbivory. However, these relationships can differ among functional groups of fish and life-history stages. Information on these fish–habitat interactions is critical for identifying habitats that facilitate ecological functions and ensures the successful management and conservation of essential habitats.

Keywords
herbivorous fish, functional diversity, ecosystem function
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-187881 (URN)10.3390/d12100391 (DOI)000586797000001 ()
Available from: 2021-01-06 Created: 2021-01-06 Last updated: 2024-01-30Bibliographically approved
Eggertsen, L., Goodell, W., Cordeiro, C. A. M., Mendes, T. C., Longo, G. O., Ferreira, C. E. L. & Berkström, C. (2020). Seascape Configuration Leads to Spatially Uneven Delivery of Parrotfish Herbivory across a Western Indian Ocean Seascape. Diversity, 12(11), Article ID 434.
Open this publication in new window or tab >>Seascape Configuration Leads to Spatially Uneven Delivery of Parrotfish Herbivory across a Western Indian Ocean Seascape
Show others...
2020 (English)In: Diversity, E-ISSN 1424-2818, Vol. 12, no 11, article id 434Article in journal (Refereed) Published
Abstract [en]

Spatial configuration of habitat types in multihabitat seascapes influence ecological function through links of biotic and abiotic processes. These connections, for example export of organic matter or fishes as mobile links, define ecosystem functionality across broader spatial scales. Herbivory is an important ecological process linked to ecosystem resilience, but it is not clear how herbivory relates to seascape configuration. We studied how herbivory and bioerosion by 3 species of parrotfish were distributed in a multi-habitat tropical seascape in the Western Indian Ocean (WIO). We surveyed the abundance of three species with different life histories-Leptoscarus vaigiensis (seagrass species), Scarus ghobban (juvenile-seagrass/adults-reefs) and Scarus rubroviolaceus (reef species) -in seagrass meadows and on reefs and recorded their selectivity of feeding substrate in the two habitats. Herbivory rates for L. vaigiensis and S. ghobban and bioerosion for S. rubroviolaceus were then modelled using bite rates for different size classes and abundance and biomass data along seascape gradients (distance to alternative habitat types such as land, mangrove and seagrass). Bioerosion by S. rubroviolaceus was greatest on reefs far from seagrass meadows, while herbivory rates by S. ghobban on reefs displayed the opposite pattern. Herbivory in seagrass meadows was greatest in meadows close to shore, where L. vaigiensis targeted seagrass leaves and S. ghobban the epiphytes growing on them. Our study shows that ecological functions performed by fish are not equally distributed in the seascape and are influenced by fish life history and the spatial configuration of habitats in the seascape. This has implications for the resilience of the system, in terms of spatial heterogeneity of herbivory and bioerosion and should be considered in marine spatial planning and fisheries management.

Keywords
herbivorous fish, coral reefs, seagrass, seascape ecology, ecosystem function, environmental gradients
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-188896 (URN)10.3390/d12110434 (DOI)000592827200001 ()
Available from: 2021-01-14 Created: 2021-01-14 Last updated: 2024-01-30Bibliographically approved
Berkström, C., Eggertsen, L., Goodell, W., Cordeiro, C. A., Lucena, M. B., Gustafsson, R., . . . Ferreira, C. E. (2020). Thresholds in seascape connectivity: the spatial arrangement of nursery habitats structure fish communities on nearby reefs. Ecography, 43(6), 882-896
Open this publication in new window or tab >>Thresholds in seascape connectivity: the spatial arrangement of nursery habitats structure fish communities on nearby reefs
Show others...
2020 (English)In: Ecography, ISSN 0906-7590, E-ISSN 1600-0587, Vol. 43, no 6, p. 882-896Article in journal (Refereed) Published
Abstract [en]

Ecosystems are linked by the movement of organisms across habitat boundaries and the arrangement of habitat patches can affect species abundance and composition. In tropical seascapes many coral reef fishes settle in adjacent habitats and undergo ontogenetic habitat shifts to coral reefs as they grow. Few studies have attempted to measure at what distances from nursery habitats these fish migrations (connectivity) cease to exist and how the abundance, biomass and proportion of nursery species change on coral reefs along distance gradients away from nursery areas. The present study examines seascape spatial arrangement, including distances between habitats, and its consequences on connectivity within a tropical seascape in Mozambique using a seascape ecology approach. Fish and habitat surveys were undertaken in 2016/2017 and a thematic habitat map was created in ArcGIS, where cover and distances between habitat patches were calculated. Distance to mangroves and seagrasses were significant predictors for abundance and biomass of most nursery species. The proportions of nursery species were highest in the south of the archipelago, where mangroves were present and decreased with distance to nurseries (mangroves and seagrasses). Some nursery species were absent on reef sites farthest from nursery habitats, at 80 km from mangroves and at 12 km from seagrass habitats. The proportion of nursery/non-nursery snapper and parrotfish species, as well as abundance and biomass of seagrass nursery species abruptly declined at 8 km from seagrass habitats, indicating a threshold distance at which migrations may cease. Additionally, reefs isolated by large stretches of sand and deep water had very low abundances of several nursery species despite being within moderate distances from nursery habitats. This highlights the importance of considering the matrix (sand and deep water) as barriers for fish migration.

Keywords
coral reef, fish migrations, habitat configuration, habitat connectivity, habitat shifts, landscape ecology, ontogenetic
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-181163 (URN)10.1111/ecog.04868 (DOI)000520262500001 ()
Available from: 2020-05-11 Created: 2020-05-11 Last updated: 2022-03-23Bibliographically approved
Eggertsen, L. (2019). Identification and implications of fish nurseries in tropical and subtropical seascapes. (Doctoral dissertation). Stockholm: Department of Ecology, Environment and Plant Sciences, Stockholm University
Open this publication in new window or tab >>Identification and implications of fish nurseries in tropical and subtropical seascapes
2019 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Many species of reef fish reside in specific nursery habitats as juveniles. Seagrass meadows, and mangroves are examples of well-recognized nursery habitats, but only recently canopy-forming seaweeds have been found to provide important habitats for some fish species in the tropics. Availability of nurseries can have effects on the abundance and spatial distribution of adult fish, which is why it is important to recognize key nursery habitats for proper management. Information on reef fish nurseries is largely lacking in the South Western Atlantic (SWA), while information in the Western Indian Ocean (WIO) and elsewhere is more extensive. However, more information on the  consequences of nursery availability on adult fish populations is needed. This thesis studies nursery habitat use of reef fish on tropical and subtropical reefs in the SWA and in seagrass and reef systems in the WIO. The hypothesis that seagrass and canopy-forming macroalgae meadows function as a nursery habitat for reef fish is tested in the SWA. The aim of this thesis is also to understand distribution patterns of fish arising from the arrangement of the seascape, using a seascape ecology approach, linking patterns to non-reef nursery habitat use (mangroves and seagrass systems). Results showed that spatial and temporal patterns of juvenile reef fish abundance were weak on rocky, subtropical reefs in the SWA (Paper I), while there was a stronger preference for certain habitats on SWA tropical biogenic reefs, especially seaweed beds dominated by Sargassum (Paper II). The widely accepted paradigm that seagrass meadows function as nursery habitats for reef fish was not supported by the results from the study site in the tropical SWA (Paper II). This may be related to habitat availability in the seascape. In the SWA, seagrass meadows are spatially small, fragmented and less complex, compared to in the WIO, where they display high structural complexity and cover large areas. At the WIO study site (Bazaruto Archipelago), the juvenile fish assemblage in the seagrass meadows encompassed a number of reef fish species from a range of trophic groups and families, as well as resident seagrass species (Paper III). Key variables and extent of spatial scales that structure ontogenetic migrations were identified in both seagrass and reef habitats. Fish distribution patterns in the seagrass seascape was strongly influenced by seascape configuration and distance to adjacent habitats, highlighting that not all seagrass meadows are equally productive as nursery habitats. Variables important for distribution patterns of fish were identified, which in most cases were species-specific, and related to life history and functional traits of species. Effects of two small protected areas on the fish assemblage was also linked to geographical placement of reserves in the seascape. Likewise, the adult fish community composition on the reefs was found to be structured by the spatial arrangement of nursery habitats in the seascape, and presence of stretches of sand acting as isolating barriers (Paper IV). Nursery fish species were less abundant on reefs far from nurseries, resulting in differences in community and functional group composition along distance gradients in the seascape. Depending on functional traits of the nursery fish assemblage, seagrass and mangroves can enhance certain ecological functions on reefs. Both community structure and ecosystem functioning may therefore change depending on nursery habitat availability, highlighting the need to adopt a holistic seascape approach in management.

Place, publisher, year, edition, pages
Stockholm: Department of Ecology, Environment and Plant Sciences, Stockholm University, 2019. p. 48
National Category
Ecology
Research subject
Marine Biology
Identifiers
urn:nbn:se:su:diva-165468 (URN)978-91-7797-606-6 (ISBN)978-91-7797-607-3 (ISBN)
Public defence
2019-03-15, Vivi Täckholmsalen (Q-salen), NPQ-huset, Svante Arrhenius väg 20, Stockholm, 13:00 (English)
Opponent
Supervisors
Note

At the time of the doctoral defense, the following papers were unpublished and had a status as follows: Paper 1: Manuscript. Paper 3: Submitted. Paper 4: Manuscript.

Available from: 2019-02-20 Created: 2019-01-29 Last updated: 2022-02-26Bibliographically approved
Eggertsen, L., Ferreira, C. E. L., Fontoura, L., Kautsky, N., Gullström, M. & Berkström, C. (2017). Seaweed beds support more juvenile reef fish than seagrass beds in a south-western Atlantic tropical seascape. Estuarine, Coastal and Shelf Science, 196(5), 97-108
Open this publication in new window or tab >>Seaweed beds support more juvenile reef fish than seagrass beds in a south-western Atlantic tropical seascape
Show others...
2017 (English)In: Estuarine, Coastal and Shelf Science, ISSN 0272-7714, E-ISSN 1096-0015, Vol. 196, no 5, p. 97-108Article in journal (Refereed) Published
Abstract [en]

Seascape connectivity is regarded essential for healthy reef fish communities in tropical shallow systems. A number of reef fish species use separate adult and nursery habitats, and hence contribute to nutrient and energy transfer between habitats. Seagrass beds and mangroves often constitute important nursery habitats, with high structural complexity and protection from predation. Here, we investigated if reef fish assemblages in the tropical south-western Atlantic demonstrate ontogenetic habitat connectivity and identify possible nurseries on three reef systems along the eastern Brazilian coast. Fish were surveyed in fore reef, back reef, Halodule wrightii seagrass beds and seaweed beds. Seagrass beds contained lower abundances and species richness of fish than expected, while Sargassum-dominated seaweed beds contained significantly more juveniles than all other habitats (average juvenile fish densities: 32.6 per 40 m2 in Sargassum beds, 11.2 per 40 m2 in back reef, 10.1 per 40 m2 in fore reef, and 5.04 per 40 m2 in seagrass beds), including several species that are found in the reef habitats as adults. Species that in other regions worldwide (e.g. the Caribbean) utilise seagrass beds as nursery habitats were here instead observed in Sargassum beds or back reef habitats. Coral cover was not correlated to adult fish distribution patterns; instead, type of turf was an important variable. Connectivity, and thus pathways of nutrient transfer, seems to function differently in east Brazil compared to many tropical regions. Sargassum-dominated beds might be more important as nurseries for a larger number of fish species than seagrass beds. Due to the low abundance of structurally complex seagrass beds we suggest that seaweed beds might influence adult reef fish abundances, being essential for several keystone species of reef fish in the tropical south-western Atlantic.

Keywords
Nursery grounds, Reef fish, Habitat choice, Seaweed, Ontogeny Connectivity
National Category
Ecology
Research subject
Marine Ecology
Identifiers
urn:nbn:se:su:diva-151230 (URN)10.1016/j.ecss.2017.06.041 (DOI)
Available from: 2018-01-09 Created: 2018-01-09 Last updated: 2022-02-28Bibliographically approved
Hammar, L., Andersson, S., Eggertsen, L., Haglund, J., Gullström, M., Ehnberg, J. & Molander, S. (2013). Hydrokinetic Turbine Effects on Fish Swimming Behaviour. PLOS ONE, 8(12), e84141
Open this publication in new window or tab >>Hydrokinetic Turbine Effects on Fish Swimming Behaviour
Show others...
2013 (English)In: PLOS ONE, E-ISSN 1932-6203, Vol. 8, no 12, p. e84141-Article in journal (Refereed) Published
Abstract [en]

Hydrokinetic turbines, targeting the kinetic energy of fast-flowing currents, are under development with some turbines already deployed at ocean sites around the world. It remains virtually unknown as to how these technologies affect fish, and rotor collisions have been postulated as a major concern. In this study the effects of a vertical axis hydrokinetic rotor with rotational speeds up to 70 rpm were tested on the swimming patterns of naturally occurring fish in a subtropical tidal channel. Fish movements were recorded with and without the rotor in place. Results showed that no fish collided with the rotor and only a few specimens passed through rotor blades. Overall, fish reduced their movements through the area when the rotor was present. This deterrent effect on fish increased with current speed. Fish that passed the rotor avoided the near-field, about 0.3 m from the rotor for benthic reef fish. Large predatory fish were particularly cautious of the rotor and never moved closer than 1.7 m in current speeds above 0.6 ms(-1). The effects of the rotor differed among taxa and feeding guilds and it is suggested that fish boldness and body shape influenced responses. In conclusion, the tested hydrokinetic turbine rotor proved non-hazardous to fish during the investigated conditions. However, the results indicate that arrays comprising multiple turbines may restrict fish movements, particularly for large species, with possible effects on habitat connectivity if migration routes are exploited. Arrays of the investigated turbine type and comparable systems should therefore be designed with gaps of several metres width to allow large fish to pass through. In combination with further research the insights from this study can be used for guiding the design of hydrokinetic turbine arrays where needed, so preventing ecological impacts.

National Category
Botany Ecology Environmental Sciences
Identifiers
urn:nbn:se:su:diva-100108 (URN)10.1371/journal.pone.0084141 (DOI)000328737700081 ()
Note

AuthorCount:7;

Available from: 2014-01-29 Created: 2014-01-27 Last updated: 2022-03-23Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0003-1222-2033

Search in DiVA

Show all publications