Skip to main content

Author: BOA-Bart

SWiM-acknowledged research published on hydrodynamic impacts of floating solar

SWiM-acknowledged research published on hydrodynamic impacts of floating solar

In October 2025, research acknowledged within SWiM resulted in a peer-reviewed scientific publication investigating the hydrodynamic impacts of floating photovoltaic (FPV) systems co-located with offshore wind farms in the Belgian North Sea. The study contributes new quantitative insights that support SWiM’s ambition to strengthen the scientific basis for integrated offshore renewable energy development.

New scientific publication on hydrodynamic impacts of FPV systems

In early October 2025, a scientific paper entitled “Hydrodynamic alterations induced by floating solar structures co-located with an offshore wind farm” was published in the peer-reviewed journal Frontiers in Marine Science.

The study presents a three-dimensional (3D) modelling approach to quantify hydrodynamic changes associated with the deployment of floating solar panels within an offshore wind farm in the Belgian North Sea. The analysis focuses on key physical variables, including:

  • current speed;
  • bottom shear stress;
  • and turbulent kinetic energy.

The results provide first quantitative insights into how floating solar infrastructure may alter local and regional hydrodynamic conditions when integrated with offshore wind farms.

Although the research was initiated within the framework of the EcoMPV ETF project, SWiM is explicitly acknowledged in the publication as a relevant framework contributing to the broader scientific and policy context of the work.

Read the full paper in Frontiers in Marine Science.

Relevance for SWiM

This scientific publication demonstrates how SWiM-acknowledged research contributes to advancing understanding of the hydrodynamic impacts of multi-use offshore renewable energy systems, supporting integrated assessments of offshore wind and floating solar co-location.

Stay informed

Follow the latest developments of the SWiM project.

News

[arrow-right]

Events

[arrow-right]

Results

[arrow-right]

Continue reading

New project combines wind and solar energy in Belgian North Sea

New project combines wind and solar energy in Belgian North Sea

In the SWiM project, six partners join forces to conduct research into the combination of marine technologies in the Belgian North Sea. The focus is on an ecologically sustainable integration of floating solar panels in wind farms.

The technology for floating photovoltaics has made great progress in recent years. Systems for lakes and reservoirs are being rolled out at gigawatt scale worldwide. Several approaches have been developed for offshore use, and a first number of demonstrators are being installed for this innovative technology. 

Owing to the harsh environment with its strong waves, wind, and risks of corrosion and fouling, this requires an entirely new structural development. Covering an area of less than 10% of a wind farm, PV systems with a nominal power approximately matching that of the wind turbines can be connected sharing the same grid connection, which helps reduce costs. 

The exact limits and curtailment losses have to be worked out by detailed analysis. A major beneficial factor is the complementarity of electricity generation between wind and solar throughout the year, as both energy sources are most productive at different times of the day and the year. There is a lot of wind in autumn and winter, and a lot of sun in spring and summer.

Concept

The SWiM project, which stands for Solar and Wind in the Belgian Marine Zone, is funded by the Belgian Energy Transition Fund of the Federal Public Service of the Economy and strives to draw up technical guidelines and policy recommendations towards multi-use of commercial zones at sea in so-called Mariparks.

In this concept, different technologies will be combined taking into account the possible effects of these parks on the marine environment, with effective and efficient integration of electricity generation by offshore wind and photovoltaics playing a key role. 

The results will be disseminated broadly to serve as a basis for decisions of commercial players and authorities alike.

Approach

  • The strengths and weaknesses of existing structures will be analysed, and options for their placement within wind farms and ecological effects will be mapped out.  The rules for deployment within wind farms need to be refined to consider different requirements and the interests of all users. Stakeholders will be consulted to work out rules that are safe and effective.
  • The electrical performance of the PV sysem will be modelled in detail based on an existing framework for simulating energy yields. Specific measures will be identified to ensure reliability of components in harsh offshore conditions.  
  • The detailed limits are determined by the thermal load of cables, and corresponding models will be refined to ensure best scaling while maintaining safe operating conditions.
  • Apart from the dimensions, the anchoring and mooring design determines to a large extent how the space at sea can best be used. This is complemented by requirements for safety distances and dedicated spaces for other uses. . In addition, biological effects need to be taken into account.  
  • A distinct goal of the project is to draw up policy advice and have an impact on marine spatial planning and permission rules. A series of workshops will therefore be held where stakeholders from all relevant areas can provide input. The project thus aims to develop guidelines that allow effective and safe co-use of the marine area designated for commercial purposes.

Johan Driesen, Professor of Electrical Engineering at KU Leuven affiliated with EnergyVille

“With the complementary expertise of the partners, we will determine the boundary conditions for the integration of solar and wind energy offshore. We will engage with stakeholders to work out pathways for effective deployment of this exciting combination of technologies. This can help to put Belgium firmly on the map when it comes to innovative renewable energy generation.”


Johan Driesen, Professor of Electrical Engineering at KU Leuven affiliated with EnergyVille

Partners

The project brings together six research, policy and industry partners:

  • Laborelec has broad expertise in renewables and electrical systems and infrastructure, including offshore wind, solar energy, energy storage, power conversion systems and electric cable testing. The renewables team has been conducting internal research projects – sponsored by ENGIE Research&Innovation – on offshore wind and floating PV for several years, is responsible for monitoring the Seavolt pilot and already studied the potential integration of offshore floating photovotaic panels (OFPV) into a Dutch wind farm. 
  • With a sustainable blue economy as its core business, Blue Cluster has built up considerable expertise in (international) marine policy and gives advice to policy makers based on the experience of innovative technologies in its projects. We are involved in various innovative projects dealing with multi-use of marine spaces as well as Marine Spatial Planning, and provide a strong link to the business community. 
  • The Royal Belgian Institute of Natural Sciences (RBINS) possesses significant expertise in marine ecology, covering hydrodynamic and biogeochemical modelling, experimental work, and field studies. This positions them well for the quantification of environmental impacts related to OFPV, and anthropogenic activity at seas more generally. The competencies on these topics were established in several previous research projects. 
  • Imec/EnergyVille runs and develops a physics-based energy yield modelling framework allowing to calculate the energy yield of several integrated PV applications as a function of environmental conditions and installation constraints. By extending a model established in the MarineSPOTS project, the energy system will build further on degradation models for PV systems under different stressors, which can be refined with the unique environment of OFPV.
  • UHasselt / EnergyVille has broad expertise in the domain of energy systems reliability within the department imo-imomec, in collaboration with imec. In previous projects, this research group worked on reliability modelling and testing of solar modules and power electronic systems under different thermal, mechanical and electrical stresses, as well as PV system design, in-situ sensing and energy optimisation. 
  • On top of existing broad know-how in marine structural design, KU Leuven / EnergyVille has gained significant expertise in OFPV over the past two years, not least through the MarineSPOTS ETF project. The electrical backbone of renewable energy systems, both in terms of power electronic converters and power system integration, forms part of their background, as   do grid design and market aspects

In addition, the project will be guided by an Advisory Board with ten industry members active in the marine space and renewable energies. 

This project is funded by the Energy Transition Fund of the FPS Economy, SMEs, Self-employed and Energy.

Stay informed

Follow the latest developments of the SWiM project.

News

[arrow-right]

Events

[arrow-right]

Results

[arrow-right]

Continue reading

Looking back on the first SWiM workshop

Looking back on the first SWiM workshop

On 6 March 2025, the first workshop of the SWiM project took place in Brussels. Organised by Blue Cluster, the workshop brought together policymakers, industry experts, and researchers to discuss key challenges and opportunities in regulation, tendering and environmental permit criteria.
The discussions highlighted the urgent need for regulatory frameworks and standardisation for multi-use and, more specifically, offshore solar energy in wind to create a level playing field with wind energy and reach the energy targets and sustainability goals.


Topics

One of the central debates focused on whether OPV should be included in offshore wind tenders or developed as standalone projects. While integration could optimise infrastructure use, concerns were raised about increased costs and complexity. Key considerations in tendering processes include financial viability, environmental assessments, grid integration, and circular design.

To improve economic feasibility, policy measures such as subsidies and innovative financing models were discussed. Flexible tendering approaches that allow for shorter initial project durations with potential extensions were identified as a way to accelerate innovation. Clear permitting frameworks and legal structures are necessary for defining ownership and multi-use zones.

Environmental factors also played a crucial role in the discussions. Nature-inclusive design was explored as a means to enhance marine biodiversity, though concerns were raised about potential ecological risks. The lack of data on the cumulative environmental impact of OPV and offshore wind calls for further research and demonstration projects. Circularity and sustainable decommissioning strategies are critical to minimising long-term environmental effects.

Sharing cable infrastructure with wind farms could help optimize space and reduce ecological footprints. Effective tender criteria must prioritize projects that align with sustainability goals while ensuring compatibility with existing offshore infrastructure. The lifespan of offshore infrastructure, such as cables and transformers, exceeds that of wind turbines, opening opportunities for re-use and re-powering with OPV.

Main takeaways

The workshop underlined the importance of a long-term vision, well-defined policy frameworks, and collaboration among governments, industry, and research institutions. Demonstration projects will be key in further assessing the technological and ecological viability of OPV. Future SWiM workshops will continue to address implementation strategies and scaling opportunities.

Full report

Curious to dive deeper into the workshop’s insights? A comprehensive report of the workshop is now available.

  • KDB 01

Stay informed

Follow the latest developments of the SWiM project.

News

[arrow-right]

Events

[arrow-right]

Results

[arrow-right]

Continue reading

Workshop 1 – Integration of floating solar in offshore wind farms

Workshop 1 – Integration of floating solar in offshore wind farms

Check out the results of the workshop

The first SWiM workshop took place on 6 March 2025 and focused on integration of floating solar in offshore wind farms. 

The following topics were addressed:

  • Permits and tendering criteria, location specifics and integration into Marine Spatial planning;
  • Appropriate framework to integrate offshore PV in ofsfshore wind;
  • Elements currently missing in MSP, permits, tenders and regulations or concepts.

The workshop’s goal was to come up with useful advice for policymakers at several levels.

This event was by invitation only. If you would like to learn more, please contact us.

Stay informed

Follow the latest developments of the SWiM project.

News

[arrow-right]

Events

[arrow-right]

Results

[arrow-right]

Continue reading