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Wave

Capturing energy from waves.

Ocean surface waves are generated by wind passing over the ocean surface. The friction between the wind and ocean surface causes energy to be transferred from the faster moving air to the surface layer of the ocean. Wave development depends on the length of ocean, or “fetch,” over which the wind blows in a constant direction. Longer fetches with higher wind velocities will produce larger waves. Waves can travel thousands of miles with little energy loss and can combine with waves from storms and other wind-driven events to create very energetic seas. The energy of ocean waves is concentrated at the surface and decays rapidly with depth. Wave energy technologies, also known as wave energy converters (WECs), capture energy directly from the surface motion of ocean waves. WECs can be deployed at offshore, nearshore, and shore-based locations and are intended to be modular and deployed in arrays. Due to the diverse nature of waves in different regions of the world, there is a wide variety of WECs in various stages of research and development.

OPT Point Absorber

Point Absorber

  • Point absorbers extract energy through the relative motion between a body that moves in response to wave forcing and fixed or immobile structures. The moving body may be on the surface or submerged, and the 'fixed' body may be the seabed or another structure less affected by wave action. Their principal dimension is small relative to the length of waves they are absorbing energy from. Electricity may be produced using a linear or rotary generator, or a fluid may be pumped using mechanical force and motion directly.
  • The presence of these buoys may affect fish, marine mammals, and birds as they pose a minor collision risk or they may either attract organisms to the device or cause them to avoid the site. As with all electricity generation, there is some concern that electromagnetic fields generated by power cables and moving parts may affect animals that use Earth's natural magnetic field for orientation, navigation, and hunting. Large-scale changes in flow (from arrays) may disrupt natural physical systems to cause degradation in water quality or changes in sediment transport, potentially affecting ecosystem processes. Alternatively, devices absorbing wave energy may positively act as shoreline defense.

Photo Credit: Ocean Power Technologies

Surface Attenuator

  • Surface attenuators generally have multiple segments connected to one another and that are oriented parallel with incoming waves. They use the rise and fall of swells to create a flexing motion that may be converted into rotation or drive hydraulic pumps to generate electricity. Some attenuator designs consist of a single long, flexible surface expression instead of multiple segments.
  • Concerns about collision, attraction or avoidance, electromagnetic fields, impacts on water quality, and changes in flow are similar to that of a point absorber, with an additional concern that organisms could be pinched in the joints.

 

Pelamis Wave Attenuator
Ocean Energy Oscillating Water Column

Oscillating Water Column

  • Oscillating water column devices use wave action to pressurize air in a chamber, forcing it through an air turbine. As water recedes from the chamber, the resulting vacuum pulls air back through the turbine and into the chamber. They can be located onshore or in deeper waters offshore. The turbine may be coupled to a rotary generator to produce electricity.
  • Significant noise is produced as air is pushed through the turbines, potentially affecting birds, marine mammals, and other marine organisms within the vicinity of the device. There is also concern about marine organisms getting entrapped within the air chambers. When located offshore, concerns about collision, attraction or avoidance, electromagnetic fields, and changes in flow are similar to that of a point absorber buoy; located onshore, these concerns are no different than for a standard shoreline structure.

Overtopping Device

  • Overtopping devices are long structures that allow wave motion to fill a reservoir to a higher water level than the surrounding ocean. The difference in pressure between water in the reservoir and water at the surface forces fluid through a low-head turbine coupled to a generator, where electricity is produced similar to conventional hydropower. Devices can be either onshore or floating offshore.
  • There is some concern regarding low levels of turbine noise, marine organisms getting entrapped within the reservoir, or collision with the slow-moving turbines. When located offshore, concerns about attraction or avoidance, electromagnetic fields, and changes in flow are similar to that of a point absorber buoy; located onshore these concerns are no different than for a standard shoreline structure.
Wave Dragon Overtopping Device
Oyster Oscillating Wave Surge Converter

Oscillating Wave Surge Converter

  • Oscillating wave surge devices typically have one end fixed to a substructure or the seabed while the other end is free to move. Energy is collected from the relative motion of the body, driven by the horizontal motion of waves (surge), to the fixed point. Oscillating wave surge converters often come in the form of floats, flaps, or membranes. Rotary motion at a hinge may drive a generator to produce electricity, or the moving body may be used to pressurize a fluid.
  • Environmental concerns include minor risk of collision or attraction, such as artificial reefing near the fixed point. Concerns about electromagnetic fields, impacts to water quality, and changes in flow are similar to that of a point absorber.

Photo Credit: Aquamarine Power

Marine and Wind Energy Environmental Documents

Tethys is a knowledge hub that contains documents on the environmental effects of wind and marine energy. The table below contains all of the documents in the Tethys Knowledge Base associated with Wave.

Total: 1024

Title Author Date Content Type Technology Stressor Receptor
Wave Energy Converter Arrays: Optimizing Power Production While Minimizing Environmental Effects Raghukumar, K., McWilliams, S., Chang, G. Conference Paper Marine Energy, Wave
State of the Sector 2019: Economic Benefits for Wales Marine Energy Wales Report Marine Energy, Tidal, Wave, Wind Energy, Fixed Offshore Wind Human Dimensions, Social & Economic Data
Final License Application for the PacWave South Project Oregon State University Report Marine Energy, Wave Entanglement, Habitat Change, Noise Birds, Invertebrates, Marine Mammals, Cetaceans, Physical Environment, Human Dimensions, Environmental Impact Assessment, Legal & Policy, Navigation
SEA Wave D2.2 Critical analysis of environmental mitigation and monitoring strategies Fox, J. Report Marine Energy, Wave Changes in Flow, Collision, Displacement, EMF, Entanglement, Habitat Change, Lighting, Noise Human Dimensions, Stakeholder Engagement
DTOceanPlus Apolonia, M., Simas, T., Fonseca, F. Research Study Marine Energy, Ocean Current, Tidal, Wave
SEA Wave D2.1 Knowledge Gaps and Consenting Risks for Wave & Tidal Energy Fox, J. Report Marine Energy, Wave Collision, Displacement, Noise Human Dimensions, Navigation, Social & Economic Data
Combined Exploitation of Offshore Wind and Wave Energy in the Italian Seas: A Spatial Planning Approach Azzellino, A., Lanfredi, C., Riefolo, L. Journal Article Marine Energy, Wave, Wind Energy, Fixed Offshore Wind Human Dimensions, Marine Spatial Planning
Assessing the impact of introduced infrastructure at sea with cameras: A case study for spatial scale, time and statistical power Bicknell, A., Sheehan, E., Godley, B. Journal Article Marine Energy, Wave Habitat Change Invertebrates
Lifecycle Environmental Impact Assessment of an Overtopping Wave Energy Converter Embedded in Breakwater Systems Patrizi, N., Pulselli, R., Neri, E. Journal Article Marine Energy, Wave Human Dimensions, Life Cycle Assessment
Toward a Common Understanding of Ocean Multi-Use Schupp, M., Bocci, M., Depellegrin, D. Journal Article Marine Energy, Wave, Wind Energy, Fixed Offshore Wind Human Dimensions, Marine Spatial Planning
EMEC Billia Croo Test Site: Environmental Appraisal Xodus Group Report Marine Energy, Wave Human Dimensions, Environmental Impact Assessment
Energy and socio-economic benefits from the development of wave energy in Greece Lavidas, G. Journal Article Wave, Marine Energy Social & Economic Data, Human Dimensions
Billia Croo Test Site: Environmental Statement European Marine Energy Centre (EMEC) Report Marine Energy, Wave Birds, Fish, Marine Mammals, Physical Environment, Human Dimensions, Fisheries, Navigation, Social & Economic Data, Visual Impacts
WESE Deliverable 2.1 Monitoring plans for Noise, Electromagnetic Fields and Seabed Integrity Vinagre, P., Cruz E., Chainho, P. Report Marine Energy, Wave Changes in Flow, EMF, Noise Marine Mammals, Physical Environment
WESE Deliverable 4.1 Stakeholder Database Galsparsoro, I., Mentxaka, I., Apolonia, M. Report Marine Energy, Wave Human Dimensions, Stakeholder Engagement
Wave farm impacts on coastal flooding under sea-level rise: A case study in southern Spain Bergillos, R., Rodriguez-Delgado, C., Iglesias, G. Journal Article Marine Energy, Wave Changes in Flow Physical Environment, Human Dimensions
Exploring Multi-Use potentials in the Euro-Mediterranean sea space Depellegrin, D., Venier, C., Kyriazi, Z. Journal Article Marine Energy, Tidal, Wave, Wind Energy, Fixed Offshore Wind Human Dimensions, Marine Spatial Planning
The interplay between economics, legislative power and social influence examined through a social-ecological framework for marine ecosystems services Martino, S., Tett, P., Kenter, J. Journal Article Wind Energy, Wave, Tidal, Fixed Offshore Wind, Marine Energy Social & Economic Data, Human Dimensions
Irregular wave validation of a coupling methodology for numerical modelling of near and far field effects of wave energy converter arrays Fernández, G., Stratigaki, V., Troch, P. Journal Article Marine Energy, Wave Changes in Flow Physical Environment, Water Quality
A Citizens Guide to Environmental Assessment Nova Scotia Department of Environment and Climate Change (Nova Scotia Environment) Guidance Marine Energy, Tidal, Wave, Wind Energy Habitat Change Human Dimensions, Legal & Policy, Stakeholder Engagement
Assessment of the geographical potential for co-use of marine space, based on operational boundaries for Blue Growth sectors van den Burg, S., Aguilar-Manjarrez, J., Jenness, J. Journal Article Marine Energy, Tidal, Wave, Wind Energy, Fixed Offshore Wind, Floating Offshore Wind Human Dimensions, Marine Spatial Planning
Wave energy to power a desalination plant in the north of Gran Canaria Island: Wave resource, socioeconomic and environmental assessment Fernández Prieto, L., Rodríguez Rodríguez, G., Schallenberg Rodríguez, J. Journal Article Marine Energy, Wave Human Dimensions, Environmental Impact Assessment, Social & Economic Data
The impact of energy extraction of wave energy converter arrays on wave climate under multi-directional seas Tay, Z., Venugopal, V. Journal Article Wave, Marine Energy Changes in Flow Physical Environment
Increased integration between innovative ocean energy and the EU habitats, species and water protection rules through Maritime Spatial Planning van Hees, S. Journal Article Wave, Tidal, Salinity Gradient, Ocean Current, Marine Energy Marine Spatial Planning, Legal & Policy, Human Dimensions
The effect of arrays of wave energy converters on the nearshore wave climate Atan, R., Finnegan, W., Nash, S. Journal Article Wave, Marine Energy Changes in Flow Physical Environment
Dual wave farms and coastline dynamics: The role of inter-device spacing Rodriguez-Delgado, C., Bergillos, R., Iglesias, G. Journal Article Wave, Marine Energy Changes in Flow Sediment Transport, Physical Environment, Human Dimensions
Wake effect assessment of a flap type wave energy converter farm under realistic environmental conditions by using a numerical coupling methodology Tomey-Bozo, N., Babarit, A., Murphy, J. Journal Article Wave, Marine Energy Changes in Flow
Scapa Flow Scale Site Environmental Description 2019 European Marine Energy Centre (EMEC) Report Marine Energy, Wave Human Dimensions, Environmental Impact Assessment
ETIP Ocean Simas, T., Cruz, E. Research Study Marine Energy, Ocean Current, Tidal, Wave EMF, Noise
Resilience and social capital: The engagement of fisheries communities in marine spatial planning Bakker, Y., de Koning, J., van Tatenhove, J. Journal Article Marine Energy, Tidal, Wave Human Dimensions, Fisheries, Marine Spatial Planning
Eco Wave Power Manzanillo I Project Eco Wave Power Ltd. Project Site Marine Energy, Wave
Working Group on Marine Benthal Renewable Developments Vanaverbeke, J., Coolen, J., Harrald, M. Report Marine Energy, Tidal, Wave
An LCA of the Pelamis wave energy converter Thomson, R., Chick, J., Harrison, G. Journal Article Marine Energy, Wave Human Dimensions, Life Cycle Assessment
Longstanding signals of marine community structuring by winter storm wave-base Voorhies, K., Wootton, T., Henkel, S. Journal Article Marine Energy, Wave Habitat Change Invertebrates
Strategic Environmental Assessment of Wave energy technologies (SEAWave) European Marine Energy Centre (EMEC), Fox, J. Research Study Marine Energy, Wave Changes in Flow, Habitat Change, Noise Ecosystem Processes, Fish, Invertebrates, Marine Mammals
Perspectives on a way forward for ocean renewable energy in Australia Hemer, M., Manasseh, R., McInnes, K. Journal Article Wave, Tidal, Marine Energy Legal & Policy, Human Dimensions
WESE – Wave Energy in Southern Europe AW Energy , IDOM Project Site Marine Energy, Wave
Wave farm effects on the coast: The alongshore position Rodriguez-Delgado, C., Bergillos, R., Ortega-Sánchez, M. Journal Article Marine Energy, Wave Changes in Flow Physical Environment, Sediment Transport
Wave energy exploitation in the Ionian Sea Hellenic coasts: spatial planning of potential wave power stations Kaldellis, J., Chrysikos, T. Journal Article Marine Energy, Wave Human Dimensions, Marine Spatial Planning
Coupling Methodology for Studying the Far Field Effects of Wave Energy Converter Arrays over a Varying Bathymetry Fernández, G., Balitsky, P., Stratigaki, V. Journal Article Marine Energy, Wave Changes in Flow Physical Environment, Water Quality

Displaying 361 - 400 of 1024 results