A methodology for cost-effective analysis of hydrokinetic energy projects

被引:1
作者
Fouz, D. M. [1 ]
Carballo, R. [1 ]
Lopez, I. [1 ]
Gonzalez, X. P. [1 ]
Iglesias, G. [2 ,3 ]
机构
[1] Univ Santiago Compostela, Dept Enxenaria Agroforestal, EPSE, Rua Benigno Ledo S-N, Lugo 27002, Spain
[2] Univ Coll Cork, Environm Res Inst, Sch Engn & Architecture & MaREI, Cork, Ireland
[3] Univ Plymouth, Sch Engn Comp & Math, Plymouth, England
关键词
Tidal stream; Tidal energy; Marine renewable energy; Offshore renewable energy; Cost model; Energy production model; TIDAL-STREAM ENERGY; INTEGRATED APPROACH; WAVE; RESOURCE; OPTIMIZATION; GENERATION; ESTUARY; STORAGE; DESIGN; FARMS;
D O I
10.1016/j.energy.2023.128373
中图分类号
O414.1 [热力学];
学科分类号
摘要
The cost-effective analysis (CEA) of hydrokinetic farms is typically based on simplistic assumptions regarding the performance and cost structure of hydrokinetic energy converters (HECs) and, in consequence, may lead to illinformed decision-making. In this work, a novel approach to selecting the most appropriate combination of HEC and site within a coastal area is developed, with the accurate computation of the CEA parameters as the cornerstone. The approach, which is illustrated through a case study in the Shannon Estuary (W Ireland), encompasses four models, namely: (i) HEC-site selection model, (ii) energy production model, (iii) CAPEX model, and (iv) OPEX model. By avoiding simplistic assumptions, the proposed approach improves on current procedures and enables developers to accurately compute any cost-effective parameter of interest. In particular, operation and maintenance costs are considered, along with economies of scale, which are typically disregarded in existing procedures. Beyond the interest of the results of the Shannon case study, the approach can be implemented in other regions with potential for hydrokinetic energy conversion.
引用
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页数:14
相关论文
共 79 条
[1]   Levelised costs of Wave and Tidal energy in the UK: Cost competitiveness and the importance of "banded" Renewables Obligation Certificates [J].
Allan, Grant ;
Gilmartin, Michelle ;
McGregor, Peter ;
Swales, Kim .
ENERGY POLICY, 2011, 39 (01) :23-39
[2]   Integration of tidal energy into an island energy system e A case study of Orkney islands [J].
Almoghayer, Mohammed A. ;
Woolf, David K. ;
Kerr, Sandy ;
Davies, Gareth .
ENERGY, 2022, 242
[3]   An integrated approach for the planning of dredging operations in estuaries [J].
Alvarez, M. ;
Carballo, R. ;
Ramos, V. ;
Iglesias, G. .
OCEAN ENGINEERING, 2017, 140 :73-83
[4]   Global fishing effort (1950-2010): Trends, gaps, and implications [J].
Anticamara, J. A. ;
Watson, R. ;
Gelchu, A. ;
Pauly, D. .
FISHERIES RESEARCH, 2011, 107 (1-3) :131-136
[5]   An integrated approach for the installation of a wave farm [J].
Arean, N. ;
Carballo, R. ;
Iglesias, G. .
ENERGY, 2017, 138 :910-919
[6]  
Bahaj A.S., 2008, TIDAL CURRENT ENERGY
[7]   Energy storage in association with tidal current generation systems [J].
Barbour, E. ;
Bryden, I. G. .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2011, 225 (A4) :443-455
[8]   Identifying priorities for the joint conservation of maritime built heritage and marine biodiversity: An assessment of shoreline engineering on the Isles of Scilly, UK, using historical datasets [J].
Baxter, Timothy ;
Coombes, Martin ;
Viles, Heather .
OCEAN & COASTAL MANAGEMENT, 2022, 227
[9]   The utilisation of short term energy storage with tidal current generation systems [J].
Bryden, IG ;
Macfarlane, DM .
ENERGY, 2000, 25 (09) :893-907
[10]   A high resolution geospatial database for wave energy exploitation [J].
Carballo, R. ;
Sanchez, M. ;
Ramos, V. ;
Taveira-Pinto, F. ;
Iglesias, G. .
ENERGY, 2014, 68 :572-583