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Optimization of floating wind turbines using innovative control techniques and fully coupled open source engineering tool

Project description

Advanced turbine design for maximal harvest of wind energy at high seas

Wind power is key to the EU's green future. The great ability of offshore wind turbines to generate electricity, along with the restricted potential of the onshore wind farms, increases the need to exploit wind energy in deeper waters in a sustainable manner. The EU-funded FLOATECH project will develop a set of innovative production and monitoring tools to reduce the uncertainties in the design process of floating wind turbines. FLOATECH aims to provide more advanced, trustworthy and cost-effective floating wind turbines, leading to an increase of the actual energy yield of floating wind farms.

Objective

Wind is one of the leading sources of renewables contributing to EU energy mix, and its exploitation is pivotal to meet many of next environmental and energy policy goals. Europe being one of the world technological leaders, its wind energy sector has evolved into an important industry providing hundreds of thousands of jobs. Due to the limitations of available installation sites onshore, offshore wind is becoming crucial to ensure the further growth of the sector. In this scenario, exploiting the vast wind resources in deeper waters using floating wind farms and developing the required technology will enhance EU’s economy and will contribute to achieve its green energy goals.

FLOATECH aims at stimulating this transition by increasing the technical maturity and the cost competitiveness of floating offshore wind energy. This will be achieved by two types of actions. On the one hand, a fully-coupled, aero-hydro-servo-elastic design and simulation environment (named QBlade-Ocean) will be developed. The more advanced modelling theories will lead to a reduction of the uncertainties in the design process and then to more efficient, reliable and cost-effective floating wind turbines. On the other hand, two innovative control techniques will be introduced, i.e. the Active Wave-based feed-forward Control and the Active Wake Mixing, which will lead to an increase of the actual energy yield of floating wind farms. Wave tank and wind tunnel experiments, as well as the application to a utility-size floating wind turbine are foreseen as validation and demonstration methods.

The consortium comprises five public research institutions with relevant skills in the field of offshore floating wind energy, and three industrial partners, two of which have been involved in the most recent developments of floating wind systems. An innovation advisory board including stakeholders such as certifiers, research and business networks will support the dissemination of the project results.

Call for proposal

H2020-LC-SC3-2018-2019-2020

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Sub call

H2020-LC-SC3-2020-RES-RIA

Coordinator

TECHNISCHE UNIVERSITAT BERLIN
Net EU contribution
€ 859 000,00
Address
STRASSE DES 17 JUNI 135
10623 Berlin
Germany

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Region
Berlin Berlin Berlin
Activity type
Higher or Secondary Education Establishments
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Total cost
€ 1 057 333,75

Participants (9)