Wind energy is a cornerstone of the European Green Deal and a key pillar of the EU strategy for climate neutrality by 2050. To meet rapidly increasing renewable energy targets, wind turbines are becoming significantly larger, particularly in offshore and floating applications. At the same time, a growing number of existing wind turbines are approaching their end of life, creating urgent challenges related to reliability, lifetime extension, decommissioning, and the circular use of materials. Failures of critical components such as blades and support structures can lead to high operation and maintenance costs, reduced energy production, and increased environmental impacts. Current materials and design approaches are increasingly reaching their limits under more demanding operating conditions and accelerated innovation cycles.
In this context, CIRCWIND addresses the need for enabling technologies that improve the reliability, lifetime, and circularity of wind energy systems, in line with EU energy and industrial strategies. The project focuses on two critical wind turbine components: blades and floating substructures. Its main objective is to develop and validate innovative, damage‑tolerant and circular materials, together with advanced modelling, simulation, and monitoring tools that increase reliability, extend service life, and reduce environmental footprint.
CIRCWIND combines new fibre‑reinforced polymer (FRP) materials for blades, low‑carbon geopolymer concrete for floating substructures, and virtual replica approaches enabling predictive maintenance and life‑extension strategies.
The project pathway to impact is based on the integration of:
(i) material innovation,
(ii) advanced modelling and simulation,
(iii) experimental validation, and
(iv) sustainability and cost assessment,
targeting a technology readiness level up to TRL 5.
By reducing unexpected failures, lowering maintenance needs, and enabling lifetime extension and circular material loops at end of life, CIRCWIND contributes to improving reliability and reducing the levelised cost of wind energy, thereby supporting the sustainable expansion of offshore and onshore wind power in Europe.
Social sciences and humanities are integrated through life‑cycle costing, social life‑cycle assessment, and stakeholder engagement, ensuring that technological developments are aligned with societal acceptance, economic viability, and responsible deployment.