Technology

One platform. Three energy sources.

Wave, wind and solar on a single floating structure, built almost entirely from technologies that already work at sea.

The future of Offshore Energy will NOT be single-source systems, it will be hybrid!

NoviOcean Executive Presentation, 2026

The integration logic

Everything offshore is expensive except the energy.

The cost of offshore power sits in the structure, the mooring, the cable, the permit and the vessel time. A hybrid platform pays for those once and runs three sources through them.

One platform

Three sources share one hull, one deck and one set of marine operations instead of three separate projects.

One anchoring

A single mooring spread holds the whole system, on sites from shallow water out to the deeper shelf.

One cable

One export cable carries the combined output, so the most expensive part of the connection is shared.

One installation

Built in ordinary shipyards, towed out and connected. No heavy-lift vessel, no seabed foundation work.

Built on proven technology

A new integration, not a new physics.

NoviOcean is a systems integrator — a new integration of largely proven technologies, not an entirely experimental system. Three of the four main components are already commercial. The maturity of each one is stated below.

Solar

Midsummer

Flexible CIGS panels, already produced commercially and laid straight onto the deck.

TRL 9

Wind

Wind Harvest

Commercial vertical-axis turbines, mounted on the platform rather than on a tower of their own.

TRL 8–9

Marine structure

Shipyard construction

A conventional welded steel structure, built with the methods yards use every day.

TRL 8–9

Wave power take-off

NoviOcean

The one genuinely new part. Proven hydraulics, driven from a new direction.

TRL 6 → 7

TRL labels on this page are screening self-assessments made by the company and its partners. They are not independent certifications.

Close view of a NoviOcean hybrid platform showing the yellow floats at the waterline, the solar deck and the vertical-axis wind turbines

For illustration only — the actual design is shared in closer dialogues.

Wave

An inverted hydro power plant.

Hydropower has run water under pressure through turbines for more than two hundred years. Those hydraulics are among the most reliable machines in energy, and NoviOcean uses them as they are.

The only innovation is where the pressure comes from. Instead of a dam and a head of water, large floats ride the passing waves and lift against the sea. The rest of the chain is equipment the industry has trusted for generations.

How it works

Buoyancy does the lifting.

There is no gearbox and no generator under the water. A large float rides the passing wave, buoyancy turns that motion into water at pressure, and the pressure drives a turbine type that hydropower stations have run continuously since the 1880s.

Labelled NoviOcean wave energy converter diagram in section, showing the floating structure, cylinder, piston head, piston rod, penstock and the turbine and generator assembly, with the piston rod anchored to the ocean floor

The wave power take-off in section. On the Medi Wave 850H the cylinder pushes upward against the platform rather than down to the seabed, which keeps the whole assembly above water and removes the subsea components.

  1. The float meets the wave

    Its rectangular shape follows the shape of the wave itself, presenting the largest possible surface to the passing swell.

  2. The valve closes at the low point

    At the bottom of the cycle the valve shuts, holding the float in a fixed position relative to the sea floor.

  3. The wave rises around it

    Up to three metres of the float is locked below the surface as the water climbs past it.

  4. Air is trapped below the surface

    Six hundred cubic metres of it. That displaced volume is what the lifting force is made of.

  5. The valve opens and the turbine runs

    At the right pressure the valve releases. Six hundred tonnes of lifting force push high-pressure water onto a Pelton turbine, which turns the generator.

The moving parts

Three components, all of them ordinary.

A hydropower plant taken to sea and inverted. The slow travel of a wave becomes high generator speed through parts that shipyards, hydraulics suppliers and hydropower stations already build in series.

The NoviOcean prototype float under offshore testing in Sweden, a long yellow buoyant hull marked NoviOcean floating in coastal water
Part one

The large float

The part that meets the sea. Buoyancy captures the energy, not a moving blade — which is why the float is a welded hull rather than a machine.

NoviOcean hydraulic cylinder and power take-off unit in yellow Novige housing, photographed during wave tank testing
Part two

The hydraulic cylinder

Standard hydraulics, the same component class used across heavy industry, converting the float's slow travel into water at working pressure.

A Pelton turbine runner with its ring of spoon-shaped buckets, the turbine type used in the NoviOcean wave power take-off
Part three

The Pelton turbine

A turbine design in continuous hydropower service for well over a century. Nothing about it had to be invented for the sea.

The float and the hydraulic unit are photographs of NoviOcean test hardware. The Pelton runner shown is representative of the turbine class rather than a NoviOcean part.

Survivability

Built for the sea on its worst day.

Wave machines are rarely lost to the force they harvest. They are lost to drag. A low draft and a free-floating design leave the storm very little structure to push sideways, while the lifting force the system works with stays large.

  • Low draft
  • Free-floating design
  • Initiated survival mode
20 : 1 lifting force against surge force. In 25-metre rogue waves the surge peaks at 33 tonnes per side, against 600 tonnes of lift.
NoviOcean hydrodynamic simulation showing the float at maximum draft in lifting mode, with mooring lines and the anchored piston rod running to the sea floor
Simulation 1 — maximum draft and drag forces, with the float in lifting mode.
NoviOcean hydrodynamic simulation showing the float at minimum draft, free floating on the descending phase of the wave
Simulation 2 — minimum draft, free floating on the descending phase, or in initiated survival mode.
NoviOcean platform at sea with a row of white vertical-axis Wind Harvest turbines standing on the solar deck

For illustration only — the actual design is shared in closer dialogues.

Wind

Why the turbines stand upright.

The right comparison is not vertical against horizontal turbines. It is which complete floating system produces the lowest cost of energy.

Vertical turbines capture slightly less energy, and create dramatically smaller overturning moments. That means less steel, a lighter platform, a smaller foundation and a simpler installation — savings that run through every part of the system underneath them.

Meet the partners

A single NoviOcean hybrid platform on open ocean, its full deck covered with dark blue flexible solar panels

For illustration only — the actual design is shared in closer dialogues.

Solar

A deck that was already there.

Flexible CIGS solar is not always the best roof solution. It is almost ideal for NoviOcean. The panels are light, they take the shape of the deck, and they cover a surface the platform needs anyway.

Midsummer is a genuine partnership rather than a supplier relationship. Each company strengthens the other's commercial case, and the solar keeps the platform producing on the calm bright days when waves are at their smallest.

Availability

90% of sea conditions are conditions the platform operates in.

Coverage

Between them, the two units fit most of the world's coastlines.

Alta Wave 1000H takes the high-energy waters. Medi Wave 850H takes the calmer, more common sea states — which is where most people, most ports and most grids actually are. The overlap is wide enough that many sites can take either unit.

World map of NoviOcean deployment coverage, shading the coastlines suited to the Alta Wave 1000H, the Medi Wave 850H and the areas where either unit works, against 95th percentile significant wave height

Modelled coverage for the two units against 95th-percentile significant wave height.

Development

Ten years of building and testing.

2016–18 TRL 1–3

Concept and first models.

2019–21 TRL 4–5

Scale 1:6 prototype tested at sea.

2022–24 TRL 6

Scale 1:5 prototype offshore.

2025–27 TRL 7

Full-scale pilot unit.

2028–30 TRL 8

Pre-commercial array.

2031–32 TRL 9

Commercial deployment.

Swipe to see the full programme.

NoviOcean hybrid platforms co-located inside an offshore wind farm, sitting between full-size wind turbines

Co-located inside an existing offshore wind farm.

For illustration only — the actual design is shared in closer dialogues.

The models

Two units, two wave climates.

For illustration only — the actual design is shared in closer dialogues.

Modular add-ons

The same platform, doing a second job.

Electricity is the default output, not the only one. The pressure, the deck space and the cable route are already paid for, so a unit can be specified to deliver water, stored power or fuel instead.

Desalination

Up to 70,000 litres / hour

Reverse osmosis runs on pressure the float already produces, on board each float. The freshwater line comes ashore alongside the export cable.

Desalination sites

Battery storage

2–4 MWh

Marine-rated containers on deck, air or liquid cooled. For islands and small grids it turns the platform into a complete balancing package.

Island grids

Hydrogen production

75 tonnes / year

Electrolysis at sea, for customers whose demand is fuel rather than electrons. Specified for future deployments.

Hydrogen sites

Tidal option

700 kW

Where currents are strong, the float can instead carry submerged tidal turbines — the same triple hybrid, with tide in place of wave.

Add-on capacities are indicative and depend on site and configuration. Tidal replaces the wave take-off rather than adding to it, and applies to a small share of sites — global tidal potential is roughly a tenth of wave.

See the evidence behind the design.

Explore the investment case