go to top scroll for more

Reusing existing ship structures for large capacity wave energy conversion (RESWEC)

Reference Number
EP/P018750/1
Title
Reusing existing ship structures for large capacity wave energy conversion (RESWEC)
Status
Completed
Energy Categories
Renewable Energy Sources(Ocean Energy)
Research Types
Basic and strategic applied research
Science and Technology Fields
ENGINEERING AND TECHNOLOGY (Mechanical, Aeronautical and Manufacturing Engineering)
UKERC Cross Cutting Characterisation
Not Cross-cutting
Principal Investigator
Dr F Trarieux
School of Water, Energy and Environmen
Cranfield University
Award Type
Standard
Funding Source
EPSRC
Start Date
01 October 2016
End Date
30 September 2017
Duration
12 months
Total Grant Value
£48,058
Industrial Sectors
Energy
Region
East of England
Programme
Energy : Energy
Investigators
Principal Investigator
Dr F Trarieux, School of Water, Energy and Environmen, Cranfield University
Other Investigator
Dr JAA Teixeira, School of Engineering, Cranfield University
Web Site
Objectives
Abstract
The aim of the project is to assess the feasibility of the structural modifications of a range of existing oil tankers to support an array of oscillating water columns for large capacity wave energy conversion.As with any complex project facing a number of engineering uncertainties, a methodology to de-risk each of the project sub-tasks has been developed. The technical approach will build upon known technologies and measurable quantities to produce realistic and pragmatic solutions to the challenges encountered. By starting with an existing ship, there is an opportunity to reuse the engineering expertise, and financial outlay, required to design and build a large seagoing vessel. Proposed modifications must ensure that the original strength will be maintained, with the primary loading carried by alternative members where the original continuity must be disrupted for installation of the OWC chambers. Several configurations will be developed leading to a selection of the most suitable. The new arrangement and particulars will then be used to calculate and assess the intact stability characteristics of the modified configuration. Several alternative research and development plans have been considered, but then rejected, due to the exponential nature of compounding risk. By focusing on the concept in its entirety, i.e. attempting to solve all of the challenges relating to OWC operation, PTO, electrical generation and naval architectural questions in a single proposal, the risk to project success would be inherently increased. That risk cannot be mitigated in the same fashion as tackling each major subgroup in a methodical manner, with a further technical and economic risk that the inadequate attention may generate unreliable solutions. One of the key technical issues, which is the core of this project, lies with the prediction of the structural loads in the case of a ship hull having not only multiple openings at the bottom, but also when wave energy is converted into pneumatic energy through an air turbine represented, at model scale, by an orifice plate. A purely analytical/numerical approach to predict such loads would be very risky in the case of this particularly challenging fluid-structure interaction problem presenting an air and water interface. Only a carefully thought-out experimental approach can provide an initial set of data required by the naval architect to assess the feasibility of the proposed concept. The project will be industry-led by Protean Wave Technology Ltd (PWT), with detailed work packages delegated to the parties with greatest expertise in each area. PWT will manage the project, communicate with Innovate UK on financial matters and report the project deliverables. PWT will coordinate and deliver the structural and stability analyses, whilst liaising and working closely with the team in Cranfield University on the test program
Data

No related datasets

Projects

No related projects

Publications

No related publications

Added to Database
07/02/19