Objective
Due to the increasing demand for renewable energy, a great deal of effort is being put into the development of tidal power generation systems. As these systems go in to commercial production and service, it is important to consider and develop inspection and condition monitoring techniques and systems. Condition monitoring of such systems could be used to greatly reduce the risk of failures and therefore minimise loss of power generation. If the condition of these structures is known, repairs could be scheduled for periods of low demand, rather than reacting to failures. Remote condition monitoring would reduce or eliminate the need for inspection personnel to travel out to these installations, which would be located in regions of fast-moving tidal flow and may be completely submerged, making access hazardous. By considering monitoring at this stage in development, it may be possible to influence the design of these systems in order to aid the implementation of condition monitoring. The most well-established technique for tidal energy is the use of tidal barrages, however, there are still only three operating commercially in the world. Tidal barrages are located in tidal inlets or estuaries and the tidal flow moves backwards and forwards through turbines. An alternative and more novel technique is the use of marine turbines that are located on the sea bed that generate power from tidal flows. These turbines are submerged, with rotating blades similar in appearance to those of a wind turbine. A major advantage of these is that they can be located out of sight and deep enough not to obstruct shipping channels. Techniques for condition monitoring of these marine turbines will be developed by combining acoustic emission (AE) monitoring and long-range ultrasonic testing (LRUT). Transducers will be embedded permanently within the structure and will be used for both AE monitoring and LRUT. Signals received by the transducers will be acquired and transmitted wireless.
Fields of science (EuroSciVoc)
CORDIS classifies projects with EuroSciVoc, a multilingual taxonomy of fields of science, through a semi-automatic process based on NLP techniques. See: https://op.europa.eu/en/web/eu-vocabularies/euroscivoc.
CORDIS classifies projects with EuroSciVoc, a multilingual taxonomy of fields of science, through a semi-automatic process based on NLP techniques. See: https://op.europa.eu/en/web/eu-vocabularies/euroscivoc.
- engineering and technology environmental engineering energy and fuels renewable energy hydroelectricity marine energy tidal energy
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Programme(s)
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Multi-annual funding programmes that define the EU’s priorities for research and innovation.
Topic(s)
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Calls for proposals are divided into topics. A topic defines a specific subject or area for which applicants can submit proposals. The description of a topic comprises its specific scope and the expected impact of the funded project.
Call for proposal
Procedure for inviting applicants to submit project proposals, with the aim of receiving EU funding.
Procedure for inviting applicants to submit project proposals, with the aim of receiving EU funding.
FP7-SME-2008-1
See other projects for this call
Funding Scheme
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Funding scheme (or “Type of Action”) inside a programme with common features. It specifies: the scope of what is funded; the reimbursement rate; specific evaluation criteria to qualify for funding; and the use of simplified forms of costs like lump sums.
Coordinator
CB21 6AL Cambridge
United Kingdom
The total costs incurred by this organisation to participate in the project, including direct and indirect costs. This amount is a subset of the overall project budget.