Water Mist Conference 2026 to take place in Prague

Prague to host conference on water mist technology

The 25th International Water Mist Conference (IWMC) will take place in Prague, Czech Republic, on 7th and 8th October 2026.

The conference webpage www.iwma.net/iwmc is now online.

Meaning: The ticket shop is open! And: The International Water Mist Association (IWMA) still has exhibition space on offer!

New training workshop for water mist systems

In 2026, IWMA will introduce a fresh element to the event.

The regular 1.5-day conference programme will be enhanced by a dedicated half-day training workshop focusing on the design and effective utilisation of water mist systems.

With this initiative, the association continues to invest in educating the fire protection industry on how to apply water mist technology more efficiently and confidently in practice.

CPD certificates will be issued to workshop participants.

Water mist technology, developed into its current form over the past three decades, is today a mature, well-established and environmentally friendly fire protection solution.

While the fundamental principles remain unchanged, significant progress has been made in expanding applications, strengthening validation methods and increasing international approvals.

These developments will be reflected in Prague.

Speakers will present case studies, discuss standards and guidelines, and address both achievements and remaining challenges.

Topics will include emerging risks, broader application areas and continued technological evolution.

Just as importantly, the conference provides valuable networking opportunities in an open and collegial atmosphere.

“Prague is more than a conference,” says Max Lakkonen, President of IWMA.

“It is where the global water mist community comes together to share knowledge, challenge ideas, shape the future of fire protection – and enjoy doing it together.”

How LEADER Group’s DIPHASIC mist system improves fireground safety

Firefighting system uses mist to provide 98% radiant heat protection

LEADER Group has announced a new firefighting technology called the DIPHASIC system which provides up to 98% protection against radiant heat flux during fireground interventions.

The system was developed in collaboration with the Paris Fire Brigade and other fire services to address increasing operational challenges.

This technology uses an air and water mixture to generate a mist composed of more than 1.5 billion micro-droplets per litre.

Projected at high speed, these droplets disperse throughout a volume and move around obstacles to act directly on hot gases.

The system prioritises the effectiveness of each litre of water rather than increasing overall flow rates.

Operational deployment of the technology has been in place since 2023 following scientific validation and real-scale testing.

The company will present the system at INTERSCHUTZ 2026 in Hall 13 at Booth F20 / G20.

Reducing water consumption and structural damage

Fire crews using the mist can reduce water usage by four to six times in some configurations while maintaining operational effectiveness.

Lower volumes of water limit structural loading from accumulation and reduce flooding in residential or commercial buildings.

This reduction in water use also decreases restoration requirements following fire incidents.

The system is intended to stabilise fire behaviour including flashover and backdraft conditions.

Crews can use the technology for the rapid cooling of smoke and hot gases to improve safety during advancement.

It supports firefighting without a direct line of sight and improves visibility within compartments.

Tactical applications in confined and remote environments

The DIPHASIC system has been applied in structural fires, underground parking fires and naval or airport operations.

Its ability to move through enclosed volumes is intended to support firefighting in confined environments or remote locations with restricted water access.

LEADER Group explained that the system is designed to complement existing firefighting methods rather than replace them.

It is positioned as a tactical option for use alongside established equipment depending on fire conditions and crew judgement.

The technology contributes to wider discussions regarding whether operational strategy should prioritise higher flow rates or efficiency in water application.

LEADER Group has 40 years of experience in manufacturing firefighting equipment and supplies products to more than 120 countries.

Inflexion agrees Marioff fire suppression acquisition in Finland

Fire suppression acquisition announced

Inflexion has agreed to acquire Marioff, a Finland-headquartered supplier of high-pressure water mist fire suppression systems, in a transaction that remains subject to customary regulatory approvals.

Inflexion announced the deal and said the investment will be made by its Buyout Fund VI.

Marioff was founded more than 40 years ago and is headquartered in Vantaa, Finland.

The company provides fire protection solutions and services across the value chain, including development, manufacturing, sales, turnkey project execution and lifecycle services.

Its HI-FOG technology is used in data centres, naval vessels, cruise ships and industrial facilities in more than 70 countries.

In the latest financial year, Marioff generated revenues of $266m.

Marioff operations and growth plans

Inflexion said Marioff operates in a market shaped by increasing safety regulation and stated that the company will continue to invest in innovation and its aftermarket offering.

The firm said it will support management in accelerating growth in land-based end markets.

It also said Marioff will retain its marine customer proposition and continue to grow its service capabilities.

Inflexion described the transaction as its seventh investment in the Nordic region.

The firm also cited previous investments in safety-critical and compliance-focused businesses including Kee Safety, Noventis Safety, BES, Phenna and Celnor.

Comments from Inflexion and Marioff

Flor Kassai, Partner and Head of Buyout, Inflexion, said: “Marioff is a global leader in a truly mission critical niche, supported by strong structural growth drivers.

“Its market leading high pressure water mist technology and blue chip customer base provide an outstanding platform for further international expansion.

“We have been hugely impressed by Juha and his team and are delighted to be partnering with them for the next phase of Marioff’s growth.”

Richard Booth, Partner and Head of Industrials, Inflexion, said: “Marioff is a global champion with strong opportunities for further growth worldwide.

“We look forward to leveraging our strong sector experience to supporting the team as they build on the company’s leading position and expand its presence across key international markets.”

Juha Ilvonen, Chief Executive Officer, Marioff, said: “Inflexion’s investment recognizes the strength of our people, technology and customer relationships.

“This partnership marks the start of a new phase for Marioff – building on our 40-year foundation to accelerate growth, expand our global presence, and further strengthen the high-quality solutions we deliver to our customers.”

The transaction is subject to customary regulatory approvals.

Get to know the water mist industry – and the people behind it!

Image credit: IWMA

Water mist conference returns with expanded format

The 25th International Water Mist Conference (IWMC) will take place in Prague, Czech Republic, on 7th and 8th October 2026.

The conference webpage will be online from 15th April onwards.

Following the highly successful Manchester conference, the International Water Mist Association (IWMA) is once again introducing a fresh element to the format.

The regular 1.5-day conference programme will be complemented by a dedicated half-day training workshop focusing on the design and effective utilisation of water mist systems.

With this initiative, IWMA continues to invest in educating the fire protection industry on how to apply water mist technology more efficiently and confidently in practice.

CPD certificates will be issued to workshop participants.

Ongoing development of water mist applications

Water mist technology, developed into its current form over the past three decades, is today a mature, well-established and environmentally friendly fire protection solution.

While the fundamental principles remain unchanged, significant progress has been made in expanding applications, strengthening validation methods and increasing international approvals.

These developments will be reflected in Prague.

Speakers will present case studies, discuss standards and guidelines, and address both achievements and remaining challenges.

Topics will include emerging risks, broader application areas and continued technological evolution.

Networking, awards and exhibition opportunities

Just as importantly, the conference provides valuable networking opportunities in an open and collegial atmosphere.

“Prague is more than a conference,” says Max Lakkonen, President of IWMA.

“It is where the global water mist community comes together to share knowledge, challenge ideas, shape the future of fire protection – and enjoy doing it together.”

As always, the Ragnar Wighus Award will be presented.

In 2026, it will honour the author of the best master’s thesis dedicated to smaller droplets.

The deadline for submitting synopses has been extended to 31st May 2026.

The event will – as always – be accompanied by an exhibition.

Tabletops can already be booked.

The number of exhibition spaces is limited to 15.

Available are three different sponsorship categories.

Engine bay defence: MusterFire International tackles hidden fire risks in compact machinery

Hazem Omran, Product Engineering Manager at MusterFire International, explains how compact misting systems protect small mobile machines from rapid engine compartment incidents

Fires in engine compartments of small mobile machines remain a persistent operational and safety risk across mining, agriculture, construction, transport, forestry, and waste handling sectors.

These machines operate in demanding environments characterised by vibration, dust, high ambient temperatures, and continuous mechanical load.

Within the confined space of an engine bay, hot exhaust components sit in close proximity to fuel lines, hydraulic systems, electrical harnesses, and accumulated debris.

When a fault occurs – whether from a ruptured hose, electrical short, or oil mist contacting a turbocharger – ignition can develop rapidly and escalate before an operator is even aware of the event.

As Product Engineering Manager at MusterFire International, my responsibility is to ensure our fire suppression systems are engineered to perform reliably under precisely these conditions.

Our focus is on automatic fire suppression for mobile and transportable equipment.

The objective is straightforward: detect a fire at its earliest stage and suppress it automatically before it becomes a major asset loss or safety incident.

Why smaller machines lack protection

Historically, compact mobile machinery has presented a protection gap.

Larger haul trucks and heavy mining assets are commonly fitted with engineered suppression systems.

Smaller equipment – such as compact loaders, skid steers, small excavators, and light transport vehicles – often operate with limited engineered protection due to space constraints, weight sensitivity, and perceived installation complexity.

Yet these smaller assets face the same ignition risks within tightly enclosed engine compartments.

The Muster Misting System was developed to address that gap.

It is a lightweight, self-contained suppression solution designed for engine compartments up to 2.25 cubic metres.

Rather than relying on high mass or bulky hardware, the system uses a fine mist discharge architecture that maximises extinguishing efficiency within a compact footprint.

A misting fire suppression system distributes extinguishing agent as atomised droplets through multiple strategically positioned nozzles.

The droplet size is intentionally small.

This significantly increases surface area, improving heat absorption when the droplets encounter flame or hot surfaces.

In a confined engine compartment, this fine mist expands rapidly, filling voids and surrounding components more uniformly than a coarse discharge pattern.

The agent used in the Muster Misting System is a 1 per cent fluorine-free foam solution.

The selection of fluorine-free chemistry reflects both environmental responsibility and forward-looking regulatory alignment.

There is increasing scrutiny globally on fluorinated compounds.

By adopting fluorine-free foam, we reduce environmental persistence while maintaining effective suppression performance.

From a technical perspective, the 1 per cent concentration is sufficient because the misting architecture enhances agent efficiency.

When the fine droplets contact flame or high-temperature surfaces, they absorb heat rapidly and convert to vapour.

This vapour expansion extracts thermal energy from the combustion zone, lowering temperatures below the threshold required to sustain ignition.

Simultaneously, the foam component forms a thin suppressive film over flammable liquid surfaces such as diesel or hydraulic oil.

Many engine compartment fires involve atomised fuel or oil contacting hot components.

By reducing vapour release and cooling the environment, the system interrupts the combustion cycle.

Activation is achieved through Loss-of-Pressure technology.

A pressurised detection tube is routed throughout the hazard area, typically along high-risk components such as turbochargers, exhaust manifolds, and hydraulic assemblies.

Under normal conditions, the tube maintains system pressure.

When exposed to abnormal heat levels indicative of a fire, the tube ruptures at the hottest point.

This rupture creates an immediate pressure drop that mechanically triggers the discharge valve on the agent cylinder.

This method offers several advantages in mobile environments.

It is direct-acting and localised, meaning the system responds precisely at the ignition source.

It does not depend on external power supply, electronic sensors, or software for primary activation.

In a fire event where electrical systems may be compromised, mechanical activation ensures reliability.

At the same time, the pressure circuit can be continuously monitored via an indicator panel and integrated with digital diagnostics to confirm system readiness.

Nozzle placement inside an engine bay is determined through structured hazard assessment.

We analyse engine layout, airflow, ignition sources, and fluid pathways.

High-risk zones typically include turbochargers, exhaust manifolds, alternators, starter motors, fuel injection systems, and hydraulic pump assemblies.

The objective is to create overlapping spray patterns that achieve uniform mist distribution and avoid untreated areas where flame could persist.

Depending on compartment size and geometry, compact machines generally require two to four nozzles.

For engine bays approaching the 2.25 cubic metre design limit, additional nozzles may be specified to maintain coverage density.

Engineering calculations consider enclosure volume, discharge characteristics, and target concentration levels.

Configurations are validated against performance testing to ensure consistency across installations.

Mechanical activation in harsh conditions

Installation has been engineered for both OEM integration and retrofit application.

On existing equipment, the process typically involves mounting the cylinder in a protected but accessible location, routing the detection tube around critical heat sources, and installing distribution tubing and nozzles inside the engine compartment.

The most common challenges relate to space constraints and routing discipline.

Compact machinery provides limited clearance, and tubing must be secured away from moving parts and sharp edges while maintaining correct bend radii.

Vibration management is also critical in mobile plant.

Secure bracket design and correct fastening procedures ensure long-term durability.

Because the misting system is comparatively lightweight and compact, it integrates more readily into smaller machines without significant structural modification.

Digital monitoring is provided through Muster360.

When integrated, Muster360 enables real-time visibility of system status, including pressure integrity, activation state, and fault conditions.

For fleet managers overseeing dispersed assets, this reduces reliance solely on manual inspection cycles.

Alerts can indicate pressure anomalies or discharge events, and historical logs provide traceable maintenance records.

Monitoring, records and compliance

In regulated industries such as mining, documented compliance and asset traceability are increasingly important.

Cloud diagnostics support audit readiness and provide assurance that suppression systems remain operational across the fleet.

Performance validation is fundamental.

The Muster Misting System is certified to AS 5062:2022, which defines requirements for fire protection systems on mobile and transportable equipment in Australia.

This standard addresses design, installation, and performance verification under realistic fire conditions.

In addition, the system has been tested to UL 1254, which specifies controlled performance testing for engine compartment hazards.

Certification and recognised testing provide independent verification that the system performs as intended under defined scenarios.

For end users, this reduces operational risk, supports insurance expectations, and demonstrates due diligence in asset protection strategy.

Looking ahead, compact misting suppression systems should be viewed as one layer within a comprehensive fire risk management framework.

Preventive maintenance, leak management, housekeeping, and operator awareness remain essential.

However, engine compartment fires can escalate in under a minute.

Automatic suppression addresses the time gap between ignition and human response.

As machinery becomes increasingly compact and thermally dense, lightweight and modular suppression technologies will become more relevant.

Compact systems expand engineered protection coverage to asset classes that were historically under-protected due to packaging constraints.

From an engineering perspective, the objective is controlled and measurable risk reduction: limiting downtime, reducing repair costs, protecting personnel, and aligning with evolving compliance frameworks.

Compact misting fire suppression represents a technically sound and scalable approach to improving safety outcomes across small mobile machinery fleets.

This was originally published in the March 2026 Edition of International Fire & Safety Journal. To read your FREE copy, click here.

Report questions claims about water mist outperformance in England fire incident data

Water mist systems in IRS data are not like-for-like

A report by Optimal Economics has concluded that Ministry of Housing, Communities and Local Government (MHCLG) incident data cannot be used to determine the comparative effectiveness of sprinklers and water mist systems in England.

Commissioned by the British Automatic Fire Sprinkler Association (BAFSA), the analysis drew on the MHCLG Incident Recording System (IRS) dataset of primary fires where a sprinkler or water-based fire suppression system was present between 2018/19 and 2023/24.

It reviewed 2,924 incidents in total.

Sprinkler systems accounted for 2,438 incidents, or 83% of the dataset.

Water mist systems accounted for 486 incidents.

Sprinkler systems are described as fixed, building-wide installations, whereas water mist covers a range of technologies including fixed automatic systems and portable or manually deployed hose-reel and lance equipment.

The dataset does not distinguish between those different water mist system types.

Where fires occurred and how systems were recorded

The analysis identified marked differences in the characteristics of incidents recorded under each system category.

Most sprinkler and water mist incidents occurred in non-residential buildings.

Industrial premises accounted for almost half of non-residential sprinkler incidents, including factories, recycling centres and warehouses.

There were 69 water mist incidents in industrial premises, mainly in food and drinks processing, recycling and factories.

In non-residential settings, 74% of water mist incidents were recorded in custodial environments, including prisons and young offenders’ institutions.

In dwellings, sprinkler incidents were concentrated in purpose-built flats or maisonettes, particularly those with more than ten storeys.

Water mist incidents in dwellings were primarily recorded in low-rise settings, with a concentration in single-occupancy bungalows or self-contained sheltered housing.

The report links these cases to the use of personal protection systems for vulnerable residents under local policies.

Differences were also recorded in the location of systems relative to the fire.

In most sprinkler incidents, the system was located in the room of origin.

In water mist incidents, the system was more often recorded as being on the same floor as the fire.

In 71% of water mist incidents where the system operated, the fire was on the same floor as the system rather than in the room of origin.

Conclusions and recommendations for future data

The report concludes that the IRS dataset does not contain two comparable populations of building-wide automatic suppression systems.

As a result, a robust comparative analysis of operational reliability and performance reliability between sprinklers and water mist is not possible.

It states: “Any claims that MHCLG incident data demonstrate superior effectiveness of water mist systems compared to sprinklers are not supported by the evidence and arise from invalid comparisons between fundamentally different types of fire suppression systems.”

The analysis calls for system-level classification, consistent standards and sufficient sample sizes to enable valid comparisons.

It recommends that future IRS data collection distinguishes fixed building-wide suppression, personal protection systems, local application protection and manually deployed custodial systems.

Without that separation, it warns that “suppression policy risks being shaped by invalid evidence”.

Adapting to high-risk environments: FM’s approach to lithium-ion risk in mission-critical sites

Adrian Oxley, Principal Engineer for Semiconductor/ Digital at FM discusses managing risks across unique environments and how to overcome challenges

To begin with, could you introduce yourself, your role and how your work relates to lithium-ion battery risk in mission-critical environments?

My name is Adrian Oxley and I am the Principal Engineer for Semiconductor/ Digital at FM.

I oversee the technical side of our book around data centres.

I am responsible for making sure that our resources, operating standards and the 2,213 field engineers that work throughout the globe have a strong understanding of the data centre industry.

I also have a link between our clients, the Chief Engineers group that I work in and our research department.

When our clients have technically challenges, we help to focus our research on the issue in order to offer mitigation strategies.

Additionally, I work in close collaboration with our underwriting side of the business to make sure that the engineers are providing relevant information.

What are the main causes of battery failure in data centres and telecom infrastructure, and how do these differ from risks seen in other sectors?

It doesn’t matter what industry you are focused on, whether that be data centres or the automotive industry, you need to be aware of the failures associated with lithium-ion batteries and how they can be categorised.

These categories range from manufacturing faults, mechanical damage and electrical abuse.

There are also typical external type events like electrical failures for short circuits and grounds etc.

They can all cause damage to the batteries and therefore risk putting them into thermal runaway.

How does early off-gas detection work in practice and what kind of indicators or thresholds are most relevant for operators to understand?

Off gas detection works when a lithium-ion cell starts to fail and goes into thermal runaway.

The cells begin to off-gas and the off-gas is the product of a chemical reaction that happens within the cell.

Having the ability to detect something going very wrong early on within that cycle is a positive advantage because it allows you to react proactively once you realise the issue is there.

Off-gas detection is focused on very, very small quantities due to the off-gases being around 10 parts per million.

Where does water mist suppression fit into a layered response, and what features make it suited to technical environments with sensitive equipment?

Water mist is one of the tools in our toolbox.

There are both advantages and disadvantages to these systems but overall, water mist allows us to provide effective fire protection.

I think the key thing to get across is that a water mist system must be specified based on how it’s been tested and what it has been approved for.

If you put a water mist system into an environment that it has not been tested or designed for then it’s not going to do what it’s supposed to do.

This means that you have got to be very careful with water mist systems when it comes to the protection of lithium-ion batteries- certainly within a data centre environment, making it sure it has been approved for the application.

Can you explain how detection and suppression can support each other when integrated as a single mitigation strategy?

The detection system must be a part of an overall mitigation strategy because the system on its own is not really going to do anything for us- it won’t put the fire out; it is only able to tell us that there is a problem.

Ultimately, it is from using the signal from that detection system that we can react hopefully before a fire starts.

With off-gas detection for instance, using that signal to cut the power to the chargers for the battery or cut an electrical breaker to stop the power associated with those batteries is going to give us some benefit.

Effectively, we can use the signal from the detection system, whether that be off-gas or smoke detection, to trigger the water system into action.

Water will be released and the system will use the heat of the fire to let water out of the pipework in a pre-action system.

Are there challenges in retrofitting these systems into existing facilities or when aligning them with other safety controls?

The challenge of a data centre environment is that once the environment is operational, the opportunity to go in there and start fitting fire protection systems is very remote.

 An operator would typically not want to do this retrofit.

This is why it is really important to consider the fire protection strategy at the very early concept of a building.

At that point in time, we can design the system properly and take all the building parameters into consideration during the design.

Certainly, when we are looking at data centres we need to be considering things like high velocities of airflow as this can have a significant impact on the detection system.

If there is a high volume of air flowing through the hot or cold containment this can impact the system operation.

You need to consider if it is feasible to fit a water-based system, such as a sprinkler system, into an existing system.

Yes, it is feasible, but it is also very expensive and challenge.

All of these factors need to be taken in consideration.

Operators are far better off incorporating detection systems into the overall design from a very early stage.

It is very difficult to link existing detection systems because they are designed to be holistic.

Are there any common misunderstandings about lithium-ion risk management in mission-critical sites that you think need clarification?

A lot of the time, people talk about the fire hazard associated with lithium-ion- which is a well-known phenomenon.

The data centre industry especially has seen several recent incidents.

In Korea, there was a government wide shut down for a number of days after a lithium-ion battery system was removed from a data system.

There was also a significant incident Singapore which involved an explosion that caused a substantial amount of damage.

I think this is a factor that is underestimated within the industry because many people do not realise that we’re not dealing with a fire hazard- but an explosion hazard, too.

Therefore, I believe that as part and parcel of the strategy of introducing lithium-ion batteries into data centres, additional factors need to be taken into consideration, such as the location of the batteries, the size of the room associated with it and how the room might react to an explosion.

These are all important things that we look at as FM when evaluating a battery system.

How do you see battery technology, regulatory expectations or infrastructure design influencing this topic over the next few years?

I think the industry is really at a crossroads now.

Previously, everyone worked to the UL Standards when it came to getting batteries certified, but we are now seeing the authorities having more influence.

This means that the people who give the occupation certificates to data centres are turning around and saying the tests they have previously done are not sufficient anymore in proving that the system is not going to cause a significant fire or even an explosion.

Really, the way they are coming as it is because firefighters are going into buildings and facing potential injury because of the high-risk environment[AO1.1], potentially caused by the fire and explosion risk present.

A lot of the authorities having jurisdiction now are asking for large scale fire tests to actually prove the performance of the batteries in a real-life scenario.

This uptake in desire for large scale fire testing is changing the regulatory landscape indefinitely.

Battery technology is changing simultaneously; we are seeing different technologies emerging within the industry and it is important to recognise that we cannot rule out that something worse than lithium-ion might be coming along.

Batteries are an important part of data centres, they’re not going to go away, but the application of them must be taken into consideration moving forward.

At FM, our responsibility is to help the industry navigate this moving forward.

This was originally published in the January 2026 Edition of International Fire & Safety Journal. To read your FREE copy, click here.

Magirus outlines UAE hub plans and three-year EmiControls collaboration

Magirus plans a new United Arab Emirates entity

Magirus has announced plans to establish a new entity in the United Arab Emirates (UAE) as part of its international growth strategy, alongside a separate partnership expansion with EmiControls.

In a statement dated 9 January 2026, Magirus outlined the establishment of Magirus United Arab Emirates as a regional hub for the Middle East.

The company linked the move to local product availability, shorter response times and an expanded service offering on the ground.

The new entity is intended to expand regional sales of firefighting and rescue vehicles, equipment, robotic solutions and spare parts.

Local project execution, commissioning, maintenance, training and after-sales services are expected to be delivered closer to customers.

Fatmir Veselaj, Chief Executive Officer (CEO) of Magirus, commented: “Internationalisation is one of our greatest opportunities.”

Veselaj added: “With the establishment of Magirus United Arab Emirates, we are creating the structural foundation to achieve sustainable growth in the region.”

Magirus extends EmiControls collaboration for AirCore solutions

In a statement dated 13 January 2026, Magirus confirmed it has signed a new cooperation agreement with EmiControls with a minimum term of three years.

The companies outlined plans to quadruple their joint sales volumes within the next three years.

The renewed agreement includes a regional division of markets intended to set responsibilities for market development.

The partnership builds on more than a decade of collaboration with EmiControls, which Magirus identified as a manufacturer of water mist turbines and modular robotic solutions based in Bolzano, Italy.

The statement highlighted the AirCore TAF as a multifunctional robot based on water mist technology.

Martin Eppacher, Chief Executive Officer (CEO) of EmiControls, stated: “Our collaboration with Magirus has proven extremely successful over many years.”

Eppacher continued: “With this new agreement, we aim to significantly scale our solutions internationally.”

Partnership structures and regional activity plans

Magirus outlined that the updated collaboration places a focus on defined responsibilities, coordinated planning and decision-making processes, and closer operational and strategic integration.

Veselaj noted: “We are not pursuing short-term gains, but consciously focusing on long-term, sustainable partnerships with clear goals and dependable structures.”

He added: “Our collaboration with EmiControls is a cornerstone of our system strategy.”

Magirus also outlined an ongoing process aimed at potential participation in a local provider in the Middle East.

The company confirmed it is strengthening collaboration with existing and potential new partners in the region.

The announcements set out a parallel focus on establishing local structures in the UAE and extending Magirus system solutions through its renewed EmiControls agreement.

International Water Mist Conference 2026 will take place in Prague, call for papers published

Images: Copyright IWMA

Annual International Water Mist Conference returns this October

Max Lakkonen (IFAB), President of the International Water Mist Association (IWMA) has announced that the 25th International Water Mist Conference (#IWMC2026) will take place in Prague, Czech Republic, on 7th and 8th October 2026.

The event schedule is now available on the IWMA webpage. The first important date was 15th December, when the call for papers was issued. Another important date: 15th April 2026 – the abstract deadline!

See call for papers here.

15th April is also the date when the conference webpage will be activated and the ticket sale starts.

Companies wishing to support the event can already book tabletops for the exhibition, which will run alongside the conference.

The conference will be held at The Grand Hotel International. IWMA President Max Lakkonen will open the event.

One of the conference’s highlights will be the bestowal of the 2026 Ragnar Wighus Award with which IWMA honours young scientists who dedicate their master or Ph.D. thesis to water mist.

The deadline to submit applications for the Ragnar Wighus Award is 31st March. In 2026, this prestigious award will be presented to the author of the best master thesis related to water mist technology.

The IWMA Scientific Council, chaired by Kemal Sarp Arsava (Norwegian University of Science and Technology) will evaluate the submissions. The winner will be invited to present the winning thesis in Prague.

IWMA can look back at a successful 2025 event with nearly 170 attendees from 25 countries. Max Lakkonen commented: “We have been positively surprised by the number of attendees and sponsors, which clearly demonstrates the strong momentum of our industry.”

The organization’s aim is now – obviously – to repeat this success in Prague.

For more details regarding the call for papers, speaker slots, sponsorship booking forms, the Ragnar Wighus Award, please contact the IWMA headquarters in Hamburg. We are also happy to help you with other enquiries regarding smaller droplets to fight fires.

Other opportunities to meet in 2026:

  • Fire Sprinkler International, Paris, France, 22nd and 23rd April 2026
  • The Fire Safety Event, Birmingham, UK, 28th – 30th April 2026
  • Interschutz 2026, Hanover, Germany, from 1st to 6th June 2026

IWMA 2026 call for papers opens ahead of Prague conference

Call for papers deadline dates released for IWMC2026

IWMA (International Water Mist Association) has published a call for papers for the 25th International Water Mist Conference (#IWMC2026), set to take place in Prague, Czech Republic, on 7 and 8 October 2026.

The organisation said the announcement was issued from Hamburg on 15 December 2025.

IWMA confirmed that IWMA President Max Lakkonen (IFAB) will open the event.

Call for papers deadline set

IWMA said the call for papers has been published for IWMC2026.

The abstract deadline is 15 April 2026.

Exhibition tabletops and ticket sales timeline

Bettina McDowell, IWMA CEO, said: “Sponsors can now start booking their tabletops for the exhibition which will run alongside the conference.

“All necessary forms can be found on the IWMA webpage.

“The sale of tickets will start on 15th April 2026.

“Delegates can profit from special prices until 15th August when the early bird period will end.”

Ragnar Wighus Award submission window

IWMA said submissions to apply for the Ragnar Wighus Award must be received by 31 March.

The organisation said the 2026 award will go to the author of the best master thesis dealing with water mist.

IWMA said its scientific council will evaluate submissions.

The council is chaired by Kemal Arsava of the Norwegian University of Science and Technology, according to IWMA.

IWMA added that the winner will be invited to introduce the thesis at the event.

Planning takeaways for conference participants

The dates set out a sequence of deadlines for prospective speakers, award applicants and delegates.

IWMA’s timetable places the abstract deadline and ticket sales start on the same date, 15 April 2026.

The early bird period is due to end on 15 August 2026, the organisation said.

Tabletop bookings for the exhibition are now open, according to the IWMA statement.