Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 71 checked references that resolve
resolves10.1016/j.renene.2006.01.012Power and thrust measurements of marine current turbines under various hydrodynamic flow conditions in a cavitation tunnel and a towing tank
resolves10.1002/we.2546Assessing the blockage effect of wind turbines and wind farms using an analytical vortex model
resolves10.1098/rsta.2012.0421A large-eddy simulation study of wake propagation and power production in an array of tidal-current turbines
resolves10.1098/rsta.2019.0502The energy yield potential of a large tidal stream turbine array in the Alderney Race
resolves10.1029/2018JC013832Comparative Effects of Climate Change and Tidal Stream Energy Extraction in a Shelf Sea
resolves10.1002/we.2458WInc3D: A novel framework for turbulence‐resolving simulations of wind farm wake interactions
resolves10.1016/j.renene.2017.07.081The trade-off between tidal-turbine array yield and impact on flow: A multi-objective optimisation problem
resolves10.1016/j.renene.2019.04.141The trade-off between tidal-turbine array yield and environmental impact: A habitat suitability modelling approach
resolves10.1002/we.1836Wind plant system engineering through optimization of layout and yaw control
resolves10.1016/j.renene.2016.07.039Design optimisation and resource assessment for tidal-stream renewable energy farms using a new continuous turbine approach
resolves10.1002/we.1822Wind plant power optimization through yaw control using a parametric model for wake effects-a CFD simulation study
resolves10.1016/j.renene.2017.10.009Multi-dimensional optimisation of Tidal Energy Converters array layouts considering geometric, economic and environmental constraints
resolves10.1098/rsta.2019.0500Identifying economically viable tidal sites within the Alderney Race through optimization of levelized cost of energy
resolves10.1016/j.cma.2010.07.001A fully implicit wetting–drying method for DG-FEM shallow water models, with an application to the Scheldt Estuary
resolves10.1002/we.2669A new wake‐merging method for wind‐farm power prediction in the presence of heterogeneous background velocity fields
resolves10.1016/j.apenergy.2016.09.059A semi-analytic method to optimize tidal farm layouts – Application to the Alderney Race (Raz Blanchard), France
resolves10.1016/j.apor.2020.102494Modelling an energetic tidal strait: investigating implications of common numerical configuration choices
resolves10.1016/j.renene.2014.11.079Tidal resource extraction in the Pentland Firth, UK: Potential impacts on flow regime and sediment transport in the Inner Sound of Stroma
resolves10.1016/j.cageo.2014.02.001Modelling the far field hydro-environmental impacts of tidal farms – A focus on tidal regime, inter-tidal zones and flushing
resolves10.3390/en9090741Analytical Modeling of Wind Farms: A New Approach for Power Prediction
resolves10.1017/jfm.2013.340Two-scale dynamics of flow past a partial cross-stream array of tidal turbines
resolves10.1017/jfm.2021.692Performance and wake characteristics of tidal turbines in an infinitely large array
resolves10.1016/j.apenergy.2015.03.045Characterising the spatial and temporal variability of the tidal-stream energy resource over the northwest European shelf seas
resolves10.1063/1.4863983On the homogenization of turbulent flow structures in the wake of a model wind turbine
resolves10.1098/rsta.2012.0159Interactions between tidal turbine wakes: experimental study of a group of three-bladed rotors
resolves10.1016/j.renene.2016.02.019Fast optimisation of tidal stream turbine positions for power generation in small arrays with low blockage based on superposition of self-similar far-wake velocity deficit profiles
resolves10.1098/rsta.2019.0495Characterization of the vertical evolution of the three-dimensional turbulence for fatigue design of tidal turbines
The 22 references without a DOI — listed, not checked
no DOI — not checkedAdcock TA, Draper S, Houlsby GT, Borthwick AG, Serhadlioǧu S (2013) The available power from tidal stream turbines in the Pentland Firth. Proc R Soc A Math Phys Eng Sci 469:20130072
no DOI — not checkedBarnett GL, Funke SW, Piggott MD (2014) Hybrid global-local optimisation algorithms for the layout design of tidal turbine arrays. arXiv:1410.2476
no DOI — not checkedChozas JF (2015) International levelised cost of energy for ocean energy technologies. Technical Report May, Ocean Energy Systems
no DOI — not checkedColes D, Angeloudis A, Greaves D, Hastie G, Lewis M, Mackie L, McNaughton J, Miles J, Neill S, Piggott M, Risch D, Scott B, Sparling C, Stallard T, Thies P, Walker S, White D, Willden R, Williamson B (2021) A review of the UK and British channel islands practical tidal stream energy resource. Proc R Soc A Math Phys Eng Sci 477(2255):20210469
no DOI — not checkedColes D, Greenwood C, Vogler A, Walsh T, Taaffe D (2018) Assessment of the turbulent flow upstream of the Meygen phase 1A tidal stream turbines. In: 4th Asian wave and tidal energy conference, Taipei, Taiwan
no DOI — not checkedColes DS, Walsh T (2019) Mechanisms for reducing the cost of tidal stream energy. In: 13th European wave and tidal energy conference, Naples, Italy
no DOI — not checkedDeskos G, Abolghasemi MA, Piggott MD (2017) Wake predictions from two turbine models using mesh-optimisation techniques. In: Lewis A (ed) Proceedings of the twelfth European wave and tidal energy conference, University College Cork, Ireland. EWTEC. ISSN: 2309-1983
no DOI — not checkedEdina Digimap Service (2020) Hydrospatial one, gridded bathymetry. http://digimap.edina.ac.uk/marine/. SeaZone Solutions Ltd. Accessed 2020
no DOI — not checkedGoss Z, Coles D, Piggott M (2021a) Economic analysis of tidal stream turbine arrays: a review
no DOI — not checkedHardwick J, Ashton I, Johanning L (2015) Field characterisation of currents and near surface eddies in the Pentland Firth. In: Proceedings of the 4th Oxford tidal energy workshop, March 2015, Oxford, UK, pp 34–35
no DOI — not checkedJensen NO (1983) A note on wind generator interaction. Technical report, Risø National Laboratory, Roskilde
no DOI — not checkedKärnä T, Kramer SC, Mitchell L, Ham DA, Piggott MD, Baptista AM (2018) Thetis coastal ocean model: discontinuous Galerkin discretization for the three-dimensional hydrostatic equations. Geosci Model Dev Discuss 2018:1–36
no DOI — not checkedKatic I, Højstrup J, Jensen N (1987) A simple model for cluster efficiency publication. In: European wind energy association conference and exhibition, Rome, Italy
no DOI — not checkedKraft D (1988) A software package for sequential quadratic programming. Technical report 28, Institut für Dynamik der Flugsysteme
no DOI — not checkedMachefaux E, Larsen GC, Leon JP (2015) Engineering models for merging wakes in wind farm optimization applications. J Phys Conf Ser 625(1):1–12
no DOI — not checkedNREL (2020) FLORIS. Version 2.2.0
no DOI — not checkedRathgeber F, Ham DA, Mitchell L, Lange M, Luporini F, Mcrae ATT, Bercea G-T, Markall GR, Kelly PHJ (2016) Firedrake: automating the finite element method by composing abstractions. ACM Trans Math Softw 43(3):24:1-24:27
no DOI — not checkedSIMEC Atlantis Energy (2016) AR1500 tidal turbine brochure. https://www.atlantisresourcesltd.com/wp/wp-content/uploads/2016/08/AR1500-Brochure-Final-1.pdf. Accessed 16 Nov 2020
no DOI — not checkedSIMEC Atlantis Energy (2020a) Meygen. https://simecatlantis.com/projects/meygen/. Accessed 16 Apr 2021
no DOI — not checkedSIMEC Atlantis Energy (2020b) Tidal turbines. https://simecatlantis.com/services/turbines/. Accessed 18 Nov 2020
no DOI — not checkedSmart G, Noonan M (2018) Tidal stream and wave energy cost reduction and industrial benefit: summary analysis. Technical report, ORE Catapult. https://ore.catapult.org.uk/app/uploads/2018/11/Tidal-Stream-and-Wave-Energy-Cost-Reduction-and-Industrial-Benefit.pdf. Accessed 14 Nov 2021
no DOI — not checkedU.S. Energy Information Administration (2020) Levelized cost and levelized avoided cost of new generation resources in the annual energy outlook 2020. Technical report. U.S. Energy Information Administration
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