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Conference on Fire Safety at Sea - CFIS

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Fire safety at sea remains a critical challenge for the maritime sector. The Conference on Fire Safety at Sea (CFIS) brings together industry professionals, experts, authorities and other key stakeholders to discuss solutions and drive progress in maritime fire safety.

CFIS is a unique international conference where stakeholders come together to discuss current challenges, gain new perspectives and advance maritime fire safety. In 2026, the conference will take place on 1–2 December in Borås, Sweden – home to the world-class RISE Fire and Safety facilities.

What is the Conference on Fire Safety at Sea?

The Conference on Fire Safety at Sea is dedicated to advancing maritime fire safety through collaboration, dialogue and networking. By bringing together a diverse mix of participants – from researchers to crew members – CFIS provides opportunities to learn from different perspectives and discuss future research and development needs.

CFIS was first arranged in 2021

CFIS has been held since 2021, originating from the EU-funded project LASH FIRE. The 2026 edition marks the fifth conference. Would you like to receive updates and news about the conference? Sign up for news and updates about CFIS.

Who is CFIS for?

CFIS is designed for industry professionals, researchers, authorities and regulators, technology providers, and anyone engaged in advancing maritime fire safety. The conference serves as an important meeting place for sharing experiences, building relationships and developing partnerships across the sector.

Why you should attend the Conference on Fire Safety at Sea

  • Explore real-world experiences, research and the latest developments in ship fire safety.
  • Connect with more than 100 professionals from across the maritime sector.
  • Gain practical insights you can apply directly in your work.
  • Contribute to discussions on the future of fire safety at sea

CFIS drives fire safety at sea

By bringing the sector together, the Conference on Fire Safety at Sea contributes to safer vessels, stronger policies and continued innovation in maritime fire safety.

Register for CFIS now

Secure your place to meet peers, gain new perspectives and contribute to safer vessels, crews and cargo at sea. Places are limited.

 

Register for CFIS now!

 

PS. Would you like to present at the conference? Great! You’re welcome to register your interest here: show of interest - speaker. We’ll get in touch if your topic is a good fit for the programme.

CFIS 2026
01 Dec 2026 - 02 Dec 2026
13:00-17:30
Borås Kongress, Akademiplatsen 2, Borås, Sverige
12 November 2026

5000 SEK exclusive of VAT

 

150
Conference,

Anna Karlsson

Brandingenjör
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Linnea Hemmarö

Eventkoordinator
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Adolfo Pastor

Designated Person Ashore (DPA), Trasmed

Adolfo Pastor brings practical experience from ship operations and safety management, with a focus on risk prevention and compliance in maritime transport.

Sarka Langer

Researcher & Adjunct Professor, IVL Swedish Environmental Research Institute & Chalmers University of Technology

Sarka Langer presents findings from the ShipsFLAME project, which investigates flame retardants and crew exposure on board Swedish ships.

Arne Brathole

Senior Surveyor, Norwegian Maritime Authority

Perspectives on the regulation of maritime battery systems from both Norway and the IMO.

Ángel Buenaga

Head of the Valencia CCS Centre, Sociedad de Salvamento y Seguridad Marítima

Experiences from the Maritime Incident Response Group (MIRG) in the Valencian Community, covering development and lessons learned from maritime emergency response and preparedness.

José María Piña

Fire Service Officer, Alicante Municipal Fire Brigade

Experiences from the Maritime Incident Response Group (MIRG) in the Valencian Community, covering development and lessons learned from maritime emergency response and preparedness.

Sebastian Packalén

Project Manager, Stena Teknik

Experiences and views on the importance of collaboration, knowledge sharing and working together to create safer shipping.

Bogdan Raciega

Fire Laboratory Director, Baltic Fire Laboratory

Day 1 

13:00 Registration and coffee 

----------------

13:15 Welcome and introduction 
Anna Karlsson, RISE 

Collaboration for Safer Shipping
Sebastian Packalén, Stena Teknik 

Hydrogen in Shipping: Rules, Risks, and Research - Results from the NAVHYS EU-project
TBA

----------------

14:30 Break 

----------------

15:00 Regulating Maritime Battery Systems: From Norway to the IMO
Arne Brathole, Norwegian Maritime Authority 

Fire Suppression of Electric Vehicle Fires Onboard - Findings from the EMSA study Safe transport of Alternative Fuel Vehicles on Ro-Ro Ships (STARRS)
TBA

Maintenance Deficiencies and Fire Risks of Reefers and Tractor Units 
Adolfo Pastor, Trasmed 

----------------

16:30 Break 

----------------

17:00 Sailor Stories: Practical Maritime Fire Safety
TBA

----------------

17:20 Closing remarks and information 

----------------

17:30 Networking reception 

Division: Division Safety and Transport

Day 2 

09:00 Coffee and highlights from Day 1
Anna Karlsson, RISE 

----------------

09:15 Maritime Incident Response Group (MIRG) in the Valencian Community
Ángel Buenaga,Sociedad de Salvamento y Seguridad Marítima and José María Piña, Alicante Municipal Fire Brigade

TBD

----------------

10:30 Break 

----------------

11:00 Round table discussions 

----------------

11:45 Discussion outcomes and key takeaways 

----------------

12:00 Lunch 

----------------

13:00 Occurrence of and Personal Exposure to Flame Retardants Onboard 
Sarka Langer, IVL Swedish Environmental Research Institute & Chalmers University of Technology 

TBD 

----------------

14:00 Break 

----------------

14:30 Dangerous goods or not - Self‑heating in biocoal
 Sixten Dahlbom, RISE

TBD 

----------------

15:15 Conference closing and study visit information 

----------------

15:30 Bus transport to RISE laboratories 

----------------

16:00 Study visits at RISE 
Choose one of the below: 

  • Fire Laboratory 
  • Battery Safety Laboratory 
  • Electromagnetic Compatibility (EMC) Laboratory 
  • Mechanics laboratory 
  • SSPA Maritime Centre (information session) 
  • RISE Maritime Certification (information session) 

----------------

17:00 Transport to Göteborg Landvetter Airport 

Do you have any questions or suggestions regarding CFIS?
anna.karlsson@ri.se
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Maritime

Futuristic sailing ships enable production of green hydrogen at sea

Illustration of DRIFT Energy flotilla of ships Photo: DRIFT Energy

Green hydrogen is set to play a pivotal role in the energy transition. DRIFT Energy aims to produce hydrogen at sea using energy-harvesting sailing vessels. In collaboration with RISE, the company has optimised the vessels’ turbines, thereby taking significant steps towards realising its goal to produce clean energy at sea for delivery direct to demand centres.

The British start-up DRIFT Energy’s sailing vessel is reminiscent of science fiction from the turn of the last century. But whereas those old visions of the future envisaged rotating blades propelling the vessels forward, DRIFT does the opposite – the blades are used to capture energy.

The vessels, which are scheduled to be built from 2027, are 60-metre-long catamarans equipped with hydro turbines and an on-board hydrogen production facility. As the vessel moves forward, the turbines spin and generate electricity, which is converted via electrolysis into hydrogen. The hydrogen is then delivered to ports around the world as a fuel or energy source. DRIFT’s proprietary routing software, called GOLDILOCKS, constantly searches for the right conditions to create an optimised route. Wherever the right wind and lowest waves are found, that is where it sails.

For us, the collaboration with RISE has led to a return on investment, which ultimately affects how much energy we can supply and how much good we can do for the planet.

"Most people agree that the world needs more renewable energy. There are several advantages to our solution. Firstly, we are not connected to the grid, so we have no grid constraints. In the UK, there is a waiting list of around 8 years to get a grid connection. We can sell a vessel directly to anyone who wants to start generating green energy", says Dylan Binding, Senior Performance and Dynamics Engineer at Drift Energy.

Found RISE through a research report

The hydro turbines are a crucial link in the energy production chain for DRIFT Energy’s solution. Magnus Wikander, who is responsible for strategic development in maritime hydrodynamics at RISE, describes the challenge as follows:

"A standard turbine, such as a propeller on a boat, takes energy from an engine and pushes it into the water so that the boat moves forward. DRIFT Energy’s turbine is designed to do the opposite – it is intended to capture energy to store it as hydrogen, but without capturing so much energy that the vessel cannot sail at high speed. To achieve this, we need to understand how water flows around the turbine blades."

Various turbine configurations, testing different blade numbers, shapes, and pitch angles were developed using CFD software.
Image: DRIFT Energy

Dylan Binding points out that there are few examples of underwater motion driven turbines in operation today, and just as few people with experience of the technology. However, some of this rare expertise can be found at RISE. RISE has been conducting research into underwater systems – ranging from propellers to underwater vehicles – since 1940. Many of the findings have been published in scientific journals, which has highlighted the resources within the maritime sector to an international audience. Among them is DRIFT Energy.

Simulations – A key tool for turbine optimisation

DRIFT Energy benefited from RISE's expertise in CFD (Computational Fluid Dynamics) analysis and turbine modelling to quickly begin testing designs in DRIFT’s proprietary simulation suite. Their models simulate the entire vessel's performance based on approximately 3,000 performance parameters and millions of simulated kilometres sailed in GOLDILOCKS.

"Interestingly, this work also raised several questions about how the underwater turbines could be best used", says Dylan Binding.

During the simulations, it became clear that DRIFT Energy can achieve certain operational benefits by selecting times when the turbines’ capacity should be maximised, and when it should not. In marginal conditions, running the turbine in “sub-optimal” configuration can lead to a global performance gain, and the energy yields in this regime are extremely sensitive to how you design the vessel and turbine together.

"Marrying the turbine’s performance with the vessel design was another area where RISE was of great help. We had a great deal of confidence in their expertise from the very beginning, which meant we could focus on our other challenges. We had time to focus on difficult problems to solve like the hydrogen plant, GOLDILOCKS routing algorithm and global performance optimisation, as we trusted RISE to handle the shaping of the turbine", says Dylan Binding.

The turbine, which was designed in collaboration with RISE, is now part of the final design for a vessel capable of producing more than 100,000 kilograms of hydrogen per year.

“Has achieved tangible performance improvements”

The turbine, which was designed in collaboration with RISE, is now part of the final design for a vessel capable of producing more than 100,000 kilograms of hydrogen per year.

"The turbines are one of the most important components on the ship. They form one of the first links in the energy chain, so any improvements made there have great returns in terms of efficiency. For us, the collaboration with RISE has led to a return on investment, which ultimately affects how much energy we can supply and how much good we can do for the planet."

The partnership also brings other benefits for the British company. 

"When we’ve spoken to people outside the company and told them about our collaboration with RISE, they’ve raised their eyebrows. It’s an impressive partnership. We have achieved tangible performance improvements and established a professional relationship that we hope to benefit from again in the future", says Dylan Binding.

About DRIFT Energy 

DRIFT Energy is committed to driving the transition to clean energy worldwide with a new, mobile class of renewable energy. The company’s high-performance sailing ships harness deep ocean wind to produce green energy at sea, using proprietary AI-enabled routing algorithm to find and remain in optimal weather conditions. With a focus on innovation and sustainability, DRIFT is developing and implementing renewable energy projects and partnerships that benefit our planet and its communities.

RISE expertise in the maritime sector

Through research and development projects, RISE is driving the maritime transition forward. From wind-powered vessels and hydrodynamic optimisation to sustainable ports as digital and electrified hubs – this is where solutions are being created for the greatest transformation in shipping history. The SSPA Maritime Center test facility in Gothenburg plays a key role in collaborations with companies in the maritime sector.

Last published: Maritime

Independent Performance Assessments

Performance Assesments
Ship with wind propulsion

Accurate predictions of fuel savings from wind propulsion systems are a critical component in the success of many projects. As an independent 3rd party, RISE offers unbiased and precise performance predictions.

Drawing on our extensive databases and experience in wind propulsion, we can utilize our own validated input data when needed.

Each project is unique, therefore varying levels of precision are necessary. Our capabilities include a variety of tools, ranging from rapid Velocity Prediction Programs (VPP) to complex CFD, enabling us to select the most suitable method for every situation.

Applications

Predictions of the fuel saving potential of wind propulsion systems can be used for:

  • Early-stage feasibility
  • Comparing technologies
  • Business case support
  • Performance guarantee
  • Performance models to
  • Routing software

Frederik Gerhardt

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More information:

SEAMAN Winds studies are RISE’s way to independently assess the savin potential of wind propulsion technologies. 

Our methodology includes:

Independent data: Wind propulsion technology performance data is taken from our own database. Alternatively, manufacturer values are independently reviewed by RISE.

Fair comparison: The same modelling approach is used to evaluate different wind propulsion technologies or routes.

Hull lines not required: Hull and propeller modelling based on RISE’s large database (> 8000 hull forms tested)

Validated: SEAMAN Winds has been checked against sea trial of full-scale ships with wind assisted propulsion.

Right level of complexity: SEAMAN Winds studies can be conducted at different complexity and confidence levels.

Offer-pages: Wind-Powered Ships Division: Division Safety and Transport Maritime

Design Support for wind propulsion

Design support and risks
Ocean bird

RISE provide independent, 3rd party assessments and design support to clients world-wide. Our dedicated team includes Naval Architects, aerodynamists, CFD specialists, IT system architects, logistic experts, master mariners as well as racing sailors.

Minimising risks through assessments at the design stage

Assessing seakeeping and manoeuvring performance at an early stage is even more important for wind powered vessels than for conventional ships, since there is little design experience to lean on. When the driving force comes from sails instead of a propeller, ship dynamics change considerably. Course keeping, turning ability, motions and acceleration in waves are just some of the properties that must be assessed.

Minimising risks by:

  • Early-stage assessments of manoeuvring and course keeping
  • Design advice - rudders and appendages
  • Determination of motions and accelerations for structural loads
  • Simulation of critical manoeuvres
  • Risks & Safety Assessments (FSA, FMEA)
     

Frederik Gerhardt

Forsknings- och utvecklingsingenjör
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Offer-pages: Wind-Powered Ships Division: Division Safety and Transport Maritime

Safe transportation of alternative fuel vehcles on ro-ro ships

STARRS

The rapid growth of electric and other alternative fuel vehicles (AFVs) poses new safety challenges for maritime transport. Ro-Ro vessels, built for the transport of vehicles, have large open cargo spaces that can allow fire growth, making fire safety a critical concern.

Coordinator
Active
2,5 years
Division: Division Safety and Transport

The main objective of the STARRS study from the European Maritime Safety Agency (EMSA) is to provide recommendations for further guidance and input into the development of instruments relevant to the International Maritime Organization (IMO). The study is being carried out by RISE Research Institutes of Sweden and Bureau Veritas.

Read more on EMSA's website: Publications - Safe Transport of Alternative Fuel Vehicles on Ro-Ro Ships (STARSS) study - EMSA - European Maritime Safety Agency

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Bureau Veritas
Project end date: Maritime Sekundär områdes navigation: Energy and electrification

How to accelerate the electrification of recreational boats

Boats in the archipelago

The electrification of road traffic is progressing rapidly. The electrification of recreational boats has barely begun – and there are many challenges. What is needed to accelerate the transition at sea?

When we talk about electrification, most people probably think of cars. But along the coast there is another source of emissions that is rarely mentioned in the climate debate. In Sweden and Norway alone, there are over a million recreational boats. Together, they emit over 400,000 tonnes of carbon dioxide per year – more than domestic flights in Sweden (approximately 350,000 tonnes of CO₂ in 2023, according to the Swedish Environmental Protection Agency).

"You notice it when you're standing down in the harbour; it smells of diesel and is very noisy," says Cecilia Strokirk, project manager at RISE.

Only 4 per cent of recreational boats are powered by electricity

The market for electric recreational boats is in its early stages. Today, only 4 per cent of recreational boat owners have an electric boat (Boating Survey 2025, Swedish Transport Agency). The rapid development that has taken place in the automotive industry has been almost completely absent when it comes to recreational boats. Demand has been considered too low.

There is considerable interest in electrification among recreational boat owners.

At the same time, it is a paradox – interest in electric boats is high among boaters.

As part of the EU-funded Interreg project go:LEIF, which has investigated how the electrification of recreational boats can be accelerated in the Skagerrak region, surveys and interviews have been conducted with Swedish and Norwegian boat owners.

The results show that there is a strong desire to do so. Reducing emissions is an important factor, but there is also a desire for a quieter environment at sea.

"People want to enjoy themselves throughout their entire trip, not just where they stop. There is a great deal of interest in being able to experience nature in a better way with electric boats," says Cecilia Strokirk.

Other advantages were also pointed out, such as simpler and cheaper maintenance.

Price and range concerns hinder electrification

So why is electrification progressing so slowly? Part of the reason is that electric boats are still expensive, as the market is still small. But there are many other challenges – many recreational boat owners are concerned about range and charging infrastructure.

Developments in passenger and transport traffic by sea are progressing much more rapidly.

"The routes are predictable and charging can be designed at the fixed quays. There is a much clearer schedule than when a regular boat owner jumps into their leisure boat and sets off. It's a challenge," says Cecilia Strokirk.

The goal of the go:LEIF project, which was completed at the turn of 2025/2026, has been to create better conditions for the electrification of recreational boats by building knowledge, testing solutions and developing business models for charging infrastructure.

"We have been working with test beds in various ports. Charging stations have been installed, but we have also looked at how charging can be combined with existing infrastructure, for example through jetties or combined car and boat charging," says Cecilia Strokirk.

We have also looked at how charging can be combined with existing infrastructure.

How the transition can take the next step

The question now is how the transition can take the next step. There are many obstacles along the way – from seasonal variations, recreational boats are not used year-round to the same extent as passenger cars, to power requirements and grid dimensioning in the archipelago.

Perhaps a charging station on an island needs to be combined with solar power and a battery.

"You also have to take the environment and detailed plans into account. In this case, an extended jetty, i.e. the outlet you have at your berth in your home harbour, can be a good way to enable you to charge your electric boat," says Cecilia Strokirk.

Following go:LEIF, a strategy and guidance document, "Electrification of recreational boats", has been produced for ports and municipalities. It brings together knowledge from the project that can provide guidance for those who want to electrify – whether it is a small marina or a larger municipality-owned port.

RISE can also assist with electrification projects in ports.

"We can contribute the knowledge and expertise we have gathered within go:LEIF. This involves a number of areas of expertise and details that we have developed. We can definitely be involved in starting projects, or help to investigate needs, conduct preliminary studies and so on," says Cecilia Strokirk.

National cooperation is needed to bring about change

In the long term, national cooperation is also required to bring about change.

So far, it's a bit of a catch-22 situation. As long as there isn't sufficient infrastructure for electric recreational boats, it's difficult for the boating industry to make the transition – after all, no one wants to buy a boat that's difficult to use to its full potential.

This requires cooperation between ports, municipalities, energy companies and technology companies – but also political decisions.

"There is considerable interest in electrification among recreational boat owners. However, if it is to be driven by the private sector, without government subsidies for electric boats and without a decision to electrify everything in a harbour, then it will proceed very slowly," says Cecilia Strokirk.

Curious to read more about the results of the go:LEIF project?

Strategy and guidance document for ports and municipalities (scrollable PDF in Swedish)

Cecilia Strokirk

Projektledare
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Last published: Maritime Sekundär områdes navigation: Electromobility

Increased preparedness for Swedish port regions

Increased preparedness for Swedish port
Port

Swedish ports are operating in an increasingly challenging future landscape. This project examines how ports can address these challenges in relation to the climate crisis and broader societal transformations and suggest mitigation methods.

Deltagare
Active
3år
Division: Division Safety and Transport

Against this background, the project aims to strengthen the preparedness of Swedish port regions for the future in relation to other societal and security-related challenges. This is particularly important given the uncertainties surrounding the magnitude of future climate change and the evolving demands on port operations, such as changing security requirements.

As climate change affects Swedish ports in different ways, ranging from rising sea levels to changing ice seasons, port operations face both operational and strategic challenges. Addressing these challenges requires clear allocation of responsibilities, long-term planning, and collaboration between port authorities, municipalities, and national government actors. By examining how climate adaptation measures can be coordinated among different stakeholders, the project contributes to increased efficiency and knowledge sharing within Swedish port regions.

At the same time, a changing climate creates new opportunities, such as improved conditions for shipping over the seasons. By combining physical measures, nature-based solutions, and organizational development, ports can strengthen their robustness and contribute to a sustainable and resilient transport system.

Enhanced preparedness for climate change and extreme events is therefore expected to contribute to the transport policy objective of a socio-economically efficient and long-term sustainable transport system. The project further disseminates knowledge on climate adaptation methods and demonstrates how collaboration can be used to spread knowledge and create long-term solutions.

Hanna Varvne

Forskare
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Åsa Kärnebro

Innovations- och processledare
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Project end date: Maritime Sekundär områdes navigation: Total defence and crisis preparedness

SEAGLOW – Empowering the energy transition

SEAGLOW
Port of Smögen

The SEAGLOW project contribute to a sustainable energy transition and efficient operation of small-scale fishing vessels in the Baltic and North Sea basins. To achieve this, the project demonstrates different technical solutions to reduce emissions from fishing boats. In Sweden, RISE and Swedish fisheries producer organisations participate.

Participant
Active
Energy
4 years
Division: Division Safety and Transport

Small‑scale fisheries face significant challenges related to both sustainability and profitability. At the same time, the sector holds great potential to contribute to a more environmentally friendly and resilient food supply chain. The SEAGLOW project is part of this transition by demonstrating how the right combination of modern technologies, in a cost‑effective way, can reduce fuel consumption, strengthen fishing communities, and create the conditions for positive and long‑term change.

The Swedish participation in the project is coordinated at RISE, and we also serve as a research partner. This includes practical involvement in working on the fishing vessel Valentina, which will be converted into a battery-plug-in hybrid to demonstrate how CO₂‑neutral small‑scale fishing can be conducted along the Swedish coast. In this work, both RISE technical expertise and knowledge of regulatory frameworks are highly valuable. Beyond that, RISE leads the work package responsible for evaluating the environmental, economic, and social feasibility of implementing the various solutions tested within the project.

SEAGLOW brings together 16 partners from several countries and tests different technological solutions on fishing vessels in Sweden, Denmark, Estonia, and Norway. Common to all vessels are efforts focused on energy efficiency and environmental improvements, such as sensor technology and environmentally friendly antifouling.

Hanna Varvne

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14. Life below water
Projekt logo: SEAGLOW Project end date: Maritime Sekundär områdes navigation: Energy and electrification

Resilient supply chains for renewable fuels in maritime shipping

RONNIE
Resilent supply chains for renewable fuels

How can supply chains for future maritime fuels be made robust in a time of energy transition, geopolitical uncertainty, and increasing demands for preparedness? This project analyses how supply chains for renewable fuels in shipping can be strengthened from a resilience perspective, with a focus on Swedish and interaction between key actors.

Coordinator
Active
Maritime
3 years
2,89 MSEK
Division: Division Safety and Transport

Maritime shipping is undergoing a transition from fossil to renewable fuels, while global supply chains have become increasingly vulnerable to disruptions related to, for example, geopolitics, extreme weather events, and cyber threats. As new fuels such as methanol, ammonia, hydrogen, and LBG are introduced, the ways in which fuel is produced, transported, stored, and bunkered are changing. This transformation creates new dependencies and risks within maritime fuel supply chains.

The aim of the project is to analyse how different types of risks and disruptions may affect supply chains for renewable maritime fuels, and to contribute knowledge on how these supply chains can be made more resilient. The work addresses both how supply chains can be designed to better withstand disruptions and how actors can respond when unforeseen events occur.

The project is carried out using a system perspective and in close collaboration with shipping companies, ports, bunker suppliers, fuel producers, and public authorities. Through interviews, analyses of existing supply chains, and scenario-based studies of future development pathways, the project generates knowledge that can support decision-making in both industry and the public sector. In this way, the project contributes to a more resilient energy supply for maritime shipping and to the transition towards a fossil-free transport system.

Emmelie Gustafsson

Forskare
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Project end date: Maritime

Ranking ammonia-based blends for sustainable shipping

Fuelling the Future
A container ship with carbon-neutral fuels including ammonia, methane, methanol, dimethoxymethane (DMM) and ethyl acetate (EA).

The urgent need to cut CO2 emission in marine transportation has boosted interest in carbon-free fuels like ammonia (NH₃). However, ammonia’s poor combustion properties require blending with other fuels for better performance.

Coordinator
Active
Maritime
Västra Götaland Region
1 year
708 000 SEK
Division: Division Safety and Transport

This project evaluates and ranks ammonia-based fuel blends for maritime use, including hydrogen-ammonia (H₂/NH₃) mixtures and blends with electrofuels or biofuels such as e-methane, e-methanol, e-ethyl acetate, and e-dimethoxymethane. 

Economic sustainability will be assessed by analyzing production costs, infrastructure needs, and fuel availability. Environmental impact will be evaluated using a well-to-wake lifecycle approach. The toxicity profiles of all candidate fuels are reviewed to address safety and regulatory concerns. Combustion and fire safety rankings will leverage CHEMKIN-PRO to compute key flame characteristics. The project aims to identify the most promising fuel blends for further development and contribute to climate-neutral shipping.

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Project end date: Maritime