Studies
An individual study is a summary of a specific scientific study, providing background context, the conservation action(s) taken and their consequences.
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Study | Published | Actions | |
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The role of geometric structure and texture on concrete for algal and macrofaunal colonization in the marine and estuarine intertidal zone Based on: Paalvast P. (2015) 77-84. Study Link |
2015 | 7 | |
The effects of manipulating microhabitat size and variability on tropical seawall biodiversity: field and flume experiments Based on: Loke L.H.L., Bouma T.J. & Todd P.A. (2017). Study Link |
2017 | 2 | |
Succession of seawall algal communities on artificial substrates Based on: Loke L.H.L., Liao L.M., Bouma T.J. & Todd P.A. (2016). Study Link |
2016 | 2 | |
Substratum type affects recruitment and development of marine assemblages over artificial substrata: a case study in the Alboran Sea Based on: Sempere-Valverde J., Ostalé-Valriberas E., Farfán G.M. & Espinosa F. (2018). Study Link |
2018 | 4 | |
Structural complexity and component type increase intertidal biodiversity independently of area Based on: Loke L.H.L. & Todd P.A. (2016). Study Link |
2016 | 8 | |
Shelving the coast with Vertipools: retrofitting artificial rock pools on coastal structures as mitigation for coastal squeeze Based on: Hall A.E., Herbert R.J.H., Britton J.R., Boyd I.M. & George N.C. (2019). Study Link |
2019 | 1 | |
Seawall as salmon habitat: eco-engineering improves the distribution and foraging of juvenile Pacific salmon Based on: Sawyer A.C., Toft J.D. & Cordell J.R. (2020). Study Link |
2020 | 2 | |
Seascape architecture – incorporating ecological considerations in design of coastal and marine infrastructure Based on: Perkol-Finkel S., Hadary T., Rella A., Shirazi R. & Sella I. (2018). Study Link |
2018 | 6 | |
Responses of the endangered limpet Patella ferruginea to reintroduction under different environmental conditions: survival, growth rates and life-history Based on: Espinosa F., González A.R., Maestre M.J., Fa D., Guerra-García J.M. & García-Gómez J.C. (2008). Study Link |
2008 | 1 | |
Replicating natural topography on marine artificial structures - a novel approach to eco-engineering Based on: Evans A.J., Lawrence P.J., Natanzi A.S., Moore P.J., Davies A.J., Crowe T.P., McNally C., Thompson B., Dozier A.E. & Brooks P.R. (2021). Study Link |
2021 | 1 | |
Reefcrete: reducing the environmental footprint of concretes for eco-engineering marine structures Based on: Dennis H.D., Evans A.J., Banner A.J. & Moore P.J. (2018). Study Link |
2018 | 1 | |
Provision of refugia and seeding with native bivalves can enhance biodiversity on vertical seawalls Based on: Bradford T.E., Astudillo J.C., Lau E.T.C., Perkins M.J., Lo C.C., Li T.C.H., Lam C.S., Ng T.P.T., Strain E.M.A., Steinberg P.D. & Leung K.M.Y. (2020). Study Link |
2020 | 4 | |
Pole and pontoon hulas: an effective way of ecological engineering to increase productivity and biodiversity in the hard-substrate environment of the port of Rotterdam Based on: Paalvast P., van Wesenbeeck B.K., van der Velde G. & de Vries M.B. (2012). Study Link |
2012 | 3 | |
Patchiness in resource distribution mitigates habitat loss: insights from high‐shore grazers Based on: Skov M.W., Hawkins S.J., Volkelt-Igoe M., Pike J., Thompson R.C. & Doncaster C.P. (2011). Study Link |
2011 | 1 | |
Patchiness in habitat distribution can enhance biological diversity of coastal engineering structures Based on: Cacabelos E., Thompson R.C., Prestes A.C.L., Azevedo J.M.N., Neto A.I. & Martins G.M. (2019). Study Link |
2019 | 1 | |
Mitigating against the loss of species by adding artificial intertidal pools to existing seawalls Based on: Browne M.A. & Chapman M.G. (2014). Study Link |
2014 | 2 | |
Maximising the ecological value of hard coastal structures using textured formliners Based on: MacArthur M., Naylor L., Hansom J.D., Burrows M.T., Loke L.H.L. & Boyd I. (2019). Study Link |
2019 | 7 | |
Making seawalls multifunctional: the positive effects of seeded bivalves and habitat structure on species diversity and filtration rates Based on: Vozzo M.L., Mayer-Pinto M., Bishop M.J., Cumbo V.R., Bugnot A.B., Dafforn K.A., Johnston E.L., Steinberg P.D. & Strain E.M.A. (2021). Study Link |
2021 | 2 | |
Low-crested coastal defence structures as artificial habitats for marine life: using ecological criteria in design Based on: Moschella P.S., Abbiati M., Åberg P., Airoldi L., Anderson J.M., Bacchiocchi F., Bulleri F., Dinesen G.E., Frost M., Gacia E., Granhag L., Jonsson P.R., Satta M.P., Sundelöf A., Thompson R.C. & Hawkins S.J. (2005). Study Link |
2005 | 1 | |
Long-term modifications of coastal defences enhance marine biodiversity Based on: Martins G.M., Jenkins S.R., Neto A.I., Hawkins S.J. & Thompson R.C. (2016). Study Link |
2016 | 1 | |
Little evidence that lowering the pH of concrete supports greater biodiversity on tropical and temperate seawalls Based on: Hsiung A.R., Tan W.T., Loke L.H.L., Firth L.B., Heery E.C., Ducker J., Clark V., Pek Y.S., Birch W.R., Ang A.C.F., Hartanto R.S., Chai T.M.F. & Todd P.A. (2020). Study Link |
2020 | 2 | |
Interacting effects of habitat structure and seeding with oysters on the intertidal biodiversity of seawalls Based on: Strain E.M.A., Cumbo V.R., Morris R.L., Steinberg P.D. & Bishop M.J. (2020). Study Link |
2020 | 4 | |
Influence of concrete properties on the initial biological colonisation of marine artificial structures Based on: Natanzi A.S., Thompson B.J., Brooks P.R., Crowe T.P. & McNally C. (2021). Study Link |
2021 | 1 | |
Increasing microhabitat complexity on seawalls can reduce fish predation on native oysters Based on: Strain E.M.A., Morris R.L., Coleman R.A., Figueira W.F., Steinberg P.D., Johnston E.L. & Bishop M.J. (2018). Study Link |
2018 | 2 | |
Increasing habitat complexity on seawalls: investigating large- and small-scale effects on fish assemblages Based on: Morris R.L., Chapman M.G., Firth L.B. & Coleman R.A. (2017). Study Link |
2017 | 1 |
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