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The Return of Sail Power: Cargo Ships Are Turning Back to the Wind

Recorded: Sept. 17, 2026, 2:09 a.m.

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The Return of Sail Power: Cargo Ships Are Turning Back to the Wind

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Rendering of a Maersk containership fitted with Anemoi Marine Technologies’ 35-meter Rotor Sail. Image courtesy Anemoi Marine Technologies
The Return of Sail Power: Cargo Ships Are Turning Back to the Wind

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Total Views: 2292

September 15, 2026

For more than a century, commercial shipping steadily moved away from sails. Now they are coming back.
Across the global fleet, shipowners are installing towering rotor sails, rigid wings and suction-based systems on everything from bulk carriers and tankers to containerships. LNG carriers could be next.
The idea is not to turn modern cargo ships back into sailing vessels. Instead, these systems are designed to work alongside conventional engines, using the wind to reduce fuel consumption whenever conditions allow.
What was once a niche experiment is beginning to look more like a real segment of commercial shipping.
The International Windship Association says more than 100 large merchant ships are now equipped with modern wind propulsion systems, representing more than 5 million deadweight tons of carrying capacity.
That is still a tiny share of the world fleet, but the ships are getting bigger, the owners more familiar and the projects more ambitious.
And 2026 has brought several signs that wind-assisted propulsion is moving beyond the demonstration stage.
One of the biggest came this month from Maersk. The company plans to install a 35-meter rotor sail on one of its 8,700-TEU containerships, with testing expected to begin in 2027 on regular Atlantic services.
The project is expected to mark the first rotor sail installation on a containership.
Rotor sails look more like giant vertical cylinders than traditional sails. They spin as wind passes around them, creating aerodynamic lift through the Magnus effect and generating thrust that reduces the load on the ship’s engines.
The concept is more than a century old, but modern controls and materials are making it practical on ships of a scale that would once have been difficult to imagine.
Vale’s 400,000-dwt Sohar Max, one of the largest ore carriers in the world, is already fitted with five 35-meter rotor sails. The system was expected to cut fuel consumption by as much as 6%. Vale is also planning to use rotor sails on future ethanol-powered very large ore carriers.
Anemoi Marine Technologies completed the installation of five Rotor Sails onboard the 400,000 dwt Very Large Ore Carrier (VLOC), Sohar Max, making it the largest vessel to receive wind propulsion technology to date. Photo: Anemoi Marine Technologies/Vale
Oil tankers are next.
Two VLCCs being built for Japan’s Idemitsu Tanker are scheduled to receive Norsepower rotor sails when they enter service in 2028, bringing wind-assisted propulsion to some of the largest ships afloat.
LNG shipping may not be far behind. Korean Register, HD Hyundai Heavy Industries, BAR Technologies and the Liberian Registry recently announced plans to study a 174,000-cubic-meter LNG carrier fitted with BAR Technologies’ WindWings.
The design moves the ship’s accommodation block forward, creating space for large rigid sails on deck. The project will examine the technical, safety and regulatory challenges of applying the system to LNG carriers.
That is significant because LNG carriers are among the most sophisticated and tightly scheduled ships in commercial service.
If wind propulsion can work there, it would further strengthen the case that the technology is moving into the mainstream.
Not every project is designed simply to assist an engine.
France’s Neoliner Origin, delivered in 2025, uses two 76-meter carbon-fiber masts carrying about 3,000 square meters of sail area, with wind intended to provide the ship’s primary propulsion across the Atlantic. The 136-meter ro-ro vessel can carry cars, containers and other cargo between Europe and North America.
Neoliner Origin departs the RMK Shipyard in Turkey for sea trials. Photo courtesy NEOLINE
Airbus is taking a similar approach with a new generation of ro-ro ships designed to carry aircraft components across the Atlantic using a combination of wind propulsion, alternative fuels and optimized routing.
The result is a strange mix of old and new: some of the world’s most advanced supply chains are beginning to rely once again on one of shipping’s oldest sources of propulsion.
The sails themselves are also changing quickly.
Some systems use spinning cylinders. Others resemble aircraft wings mounted vertically on deck. Bound4blue’s eSAIL uses suction to increase aerodynamic lift, while other developers are working with rigid foils, automated wings and soft-sail systems.
Maersk Tankers has been rolling out eSAIL systems across a group of MR tankers, while the juice carrier Atlantic Orchard has been fitted with four 26-meter suction sails.
In most cases, crews are not standing on deck trimming sails by hand. The systems are heavily automated, adjusting themselves based on wind speed, direction, vessel speed and heading. Weather-routing software can also help ships alter course slightly to capture more wind without significantly disrupting schedules.
That integration is becoming increasingly important. Norway recently launched the WINTEGRATE program, bringing together companies including Kongsberg Maritime, DNV, Odfjell, Norsepower and bound4blue.
The idea is to stop treating wind propulsion as a standalone piece of equipment bolted onto a ship and instead integrate it with engines, batteries, power-management systems and voyage planning.
That shift may be critical to the technology’s future.
The physics behind wind propulsion have not changed. The economics have.
Shipowners are under growing pressure to reduce fuel consumption and emissions, while many low-carbon fuels remain expensive, scarce or unavailable at scale.
Wind, by comparison, is free.
It also offers something relatively unusual in shipping’s decarbonization push: a technology that can often be retrofitted to ships already in service.
Savings depend heavily on the vessel, route and weather.
Industry estimates generally put fuel savings for retrofit projects somewhere in the single digits to low double digits, while purpose-built ships designed around wind propulsion can potentially achieve much more.
That may not sound revolutionary.
But on a large oceangoing vessel burning thousands of tons of fuel each year, even modest savings can add up quickly.
There are still plenty of limitations.
Wind is unpredictable. Sails take up deck space. Systems need to withstand heavy weather, corrosion and cargo operations. Bridges, cranes and terminals can restrict how tall or where equipment can be installed.
Some routes are also far better suited to wind propulsion than others.
Regulation is still catching up as well.
The International Maritime Organization has begun work on interim safety guidelines for wind propulsion and wind-assisted systems, with the first guidelines expected later this decade.
But the industry now has something it lacked only a few years ago: real operating experience.
Tankers, bulkers, ro-ros and general cargo ships are accumulating commercial sea time with these systems. Shipyards are learning how to install them. Classification societies are writing rules around them. Manufacturers are scaling up production.
That does not mean commercial shipping is heading back to the age of sail.
Engines will remain essential for schedules, maneuvering, adverse weather and port operations. Many ships will also rely on alternative fuels, batteries and other efficiency technologies.
Wind will simply become another part of the propulsion mix.
And that may be the most important change.
After spending more than a century trying to escape its dependence on the wind, shipping is starting to realize there is little reason to ignore free energy when it is blowing in the right direction.

Tags:
alternative propulsion
bar technologies
bound4blue
bulk carriers
cargo ships
containerships
eSAIL
fuel efficiency
green shipping
HD Hyundai Heavy Industries
lng carriers
Maersk
maersk tankers
maritime
norsepower
rotor sails
ship decarbonization
shipping
tankers
vale
wind propulsion
wind-assisted propulsion
WindWings

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Commercial shipping is experiencing a renewed interest in wind propulsion following a century where the industry largely moved away from sails. Shipowners are now integrating wind-assisted systems, such as rotor sails, rigid wings, and suction-based technologies, onto various vessels, ranging from bulk carriers to containerships and potentially LNG carriers. The core concept involves utilizing wind energy to reduce fuel consumption whenever conditions are favorable, operating alongside conventional engines. This development is moving beyond niche experimentation toward a tangible segment of commercial shipping, with the International Windship Association noting that over 100 large merchant ships are now equipped with these systems, representing substantial carrying capacity.

Rotor sails operate by generating aerodynamic lift through the Magnus effect, creating thrust that lessens the demand on ship engines. The technology is advancing rapidly, exemplified by Maersk planning the installation of a thirty-five-meter rotor sail on one of its containerships, with testing anticipated on regular Atlantic routes, aiming to mark the first rotor sail installation on a containership. In existing vessels, carriers like Vale’s Sohar Max have already been fitted with multiple rotor sails, demonstrating potential fuel consumption reductions of up to six percent. The technology is being explored for future vessels, including ethanol-powered very large ore carriers.

The application of wind propulsion is being explored across diverse vessel types. For instance, air transport like the Neoliner Origin is utilizing large carbon-fiber masts to provide primary propulsion across the Atlantic, while Airbus also applies similar principles to new ro-ro ship designs. The technology is diversifying beyond spinning cylinders; systems include eSAIL, which uses suction to increase aerodynamic lift, alongside research into rigid foils, automated wings, and soft-sail systems.

A critical shift is occurring in how these systems are managed. Modern integration involves heavily automating the systems, allowing them to adjust based on wind speed, direction, vessel speed, and heading. Furthermore, weather-routing software assists crews in making minor course adjustments to capture optimal wind while maintaining schedules. This trend is being centralized through collaborative programs, such as Norway’s WINTEGRATE, which aims to integrate wind propulsion with engines, battery systems, power management, and voyage planning, recognizing that physics remain constant while the economics have shifted.

Despite the potential for fuel savings—which industry estimates place in the low double digits for retrofits—several limitations exist. Wind is inherently unpredictable, and practical installation is constrained by the need to account for deck space, the structural integrity required to withstand heavy weather and corrosive environments, and the physical constraints of bridges and terminal infrastructure. Regulatory frameworks are evolving, with the International Maritime Organization developing interim safety guidelines, and the industry is accumulating crucial operating experience through commercial sea time. While wind propulsion is a powerful addition, it is understood that conventional engines, alternative fuels, and battery technologies will remain essential, with wind simply becoming another component of the overall propulsion mix.