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Mooring analysis and design for offshore WEC survivability and fatigue (MoorWEC)

Reference Number
EP/V039946/1
Title
Mooring analysis and design for offshore WEC survivability and fatigue (MoorWEC)
Status
Completed
Energy Categories
Renewable Energy Sources(Ocean Energy)
Other Power and Storage Technologies(Electric power conversion)
Research Types
Basic and strategic applied research
Science and Technology Fields
PHYSICAL SCIENCES AND MATHEMATICS (Physics)
PHYSICAL SCIENCES AND MATHEMATICS (Applied Mathematics)
PHYSICAL SCIENCES AND MATHEMATICS (Computer Science and Informatics)
ENGINEERING AND TECHNOLOGY (Mechanical, Aeronautical and Manufacturing Engineering)
UKERC Cross Cutting Characterisation
Not Cross-cutting
Principal Investigator
Professor PK Stansby
Mechanical, Aerospace and Civil Engineering
University of Manchester
Award Type
Standard
Funding Source
EPSRC
Start Date
01 September 2021
End Date
30 November 2024
Duration
39 months
Total Grant Value
£1,013,339
Industrial Sectors
Energy
Region
North West
Programme
Energy : Energy
Investigators
Principal Investigator
Professor PK Stansby, Mechanical, Aerospace and Civil Engineering, University of Manchester
Other Investigator
Dr S Draycott, Mechanical, Aerospace and Civil Engineering, University of Manchester
Dr G Fourtakas, Mechanical, Aerospace and Civil Engineering, University of Manchester
Dr L Johanning, Camborne School of Mines, University of Exeter
Dr S J Lind, Mechanical, Aerospace and Civil Engineering, University of Manchester
Professor Q Ma, Sch of Engineering and Mathematical Sci, City University
Dr A Pillai, Engineering, University of Exeter
Dr PR Thies, Engineering Computer Science and Maths, University of Exeter
Dr Q Xiao, Naval Architecture & Marine Engineering, University of Strathclyde
Dr S Yan, Sch of Engineering and Mathematical Sci, City University
Dr L Zhang, Electrical & Electronic Engineering, University of Manchester
Industrial Collaborator
Project Contact, LOC Group (London Offshore Consultants)
Project Contact, Dynamic Systems Analysis Ltd (DSA), Canada
Project Contact, Orcina Ltd
Web Site
Objectives
Abstract
Wave energy globally has potential average power slightly less than wind but this has been unexploited to date. We are concerned here with wave energy converters (WECs) offshore, before the energy resource is reduced by shallow-water effects, which would be suitable for grid scale electricity generation. Individual WEC capacity has been considered to be much smaller than for wind turbines and cost of energy (COE) considerably larger. However, with multi-mode, multi-float systems, capacity may be similar to or greater than wind in some locations and COE has been estimated to be similar to offshore wind. Survivability in extreme waves needs to be established, along with reliability of components. The mooring is the most vulnerable structural component of an offshore wave energy converter. Snap loads are a particular problem in extreme waves, and also in intermediate waves affecting fatigue. There is a widespread consensus in the wave energy community that mooring system design and modelling is a major challenge that needs to be overcome. Although literature and design guidelines for conventional ocean engineering applications are abundant, in general they do not account for the requirements of wave energy conversion, where the mooring should not inhibit platform motion causing the energy generation. Design, optimization, and assessment of mooring systems require efficient hydrodynamic and dynamic mooring models, which should be fully coupled to represent all interactions. There are various mooring options: catenary slack moored, elastic taut moored, combinations with single point (buoy) moorings, and nylon/polyester ropes offer an economic option while reducing snap loads. While some progress has been made with nonlinear hydrodynamic WEC loading models for point absorbers, an efficient general nonlinear hydrodynamic loading model for multi-bodies, accounting for wave breaking, is presently not available. Computational fluid dynamics (CFD) simulations require days, even weeks, to run on multiple processors and is unreliable for complex dynamic problems. The intention here is generalise efficient linear hydrodynamic load models by including the fully nonlinear force component due to the pressure field in the waves, known as the Froude-Krylov force. This has improved predictions of response and mooring load, markedly in some cases. This will be advanced through comparison with experimental wave basin tests and formally generalised through system identification, for single and multi-bodies with a range of mooring configurations in representative, generally multi-directional wave fields and currents. The convenient simplification of linear wave input will also be assessed with a revised force formulation determined by system identification. These force formulations will be coupled with the general industry-standard mooring model Orcaflex accounting for dynamic and material properties enabling design optimization using multi-objective genetic algorithms. This will enable survivability, fatigue and reliability analyses
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Added to Database
15/12/21