Stability versus variability: Fomtec explores polymer performance trade-offs

Even Ottesen, International Sales Manager, MENA Region at Fomtec, discusses polymer stability, testing validation and implications for industrial foam system reliability

In January, Fomtec exhibited at the Dubai Intersec Show for the 12th time.

The event brings together manufacturers, consultants, contractors and end users from across the Middle East and North Africa, a region with extensive petrochemical infrastructure and transport operations that rely on foam systems.

Fomtec used the exhibition to introduce Enviro 3 x 3 NEO, an alcohol resistant synthetic fluorine free foam concentrate developed through extensive testing and designed to meet international performance standards while maintaining stability over time.

Why is Dubai Intersec important to Fomtec’s marketing?

The Dubai Intersec Show is one of several exhibitions and conferences we support in the region, and it was the first we attended regularly.

The MENA region, with its large oil reserves and downstream petrochemical business, represents one of the largest markets for firefighting foam and foam systems, and the industrial sector is supported by a mature transport sector which is also a major user for firefighting foam.

Dubai has established itself as a crossroads for trade, and the Dubai Intersec Show and Saudi Intersec Show are the largest and best attended shows in the region, allowing us to promote products to end users, consultants, contractors and potential partners efficiently.

Our regional business partners all attend the Dubai Show, so we run training programmes alongside the show and set aside time for business meetings with partners.

What can you tell us about Enviro 3 x 3 NEO?

After more than three years and nearly 500 fire tests, we have brought to market an alcohol resistant SFFF with the highest ratings under EN 1568-3 and -4 with both fresh and saltwater.

Why should customers be excited about Enviro NEO?

There are products on the market with the same 1A:1A performance according to EN 1568-3 and -4, but they are based on what we call hidden gum, or partially hydrated polymers.

Enviro NEO, like all Fomtec SFFF products, is formulated with fully hydrated polymers.

Achieving the fire performance figures without using partially hydrated polymers means Enviro NEO offers performance and long term stability.

Why avoid hidden gum technology despite strong test performance?

The use of hidden gum technology leads to excellent fire performance in the test laboratory, and for some existing systems, especially mobile apparatus, pumping and proportioning equipment may have been designed to handle foam concentrates of a defined viscosity.

We believe viscosity is an engineering issue, and when the system is designed or pumping and proportioning equipment is specified, the greater viscosities found with fully hydrated polymer technology can be engineered to be effective.

When designing an effective system, a steady and known viscosity is desirable.

Variable viscosity with the foam concentrate in bulk storage, and the impact on shear and friction loss in pipe runs over time, is the real concern.

If you cannot guarantee the correct proportioning and application density of the finished foam when it is needed, this risk was considered too great to proceed with hidden gum technology.

Are there differences between laboratory approvals and field performance?

With hidden gum technology there is an inherent instability issue with the foam concentrate.

Partially hydrated polymers are held in suspension but want to hydrate and swell to their fully hydrated state.

We do not have quantifiable data addressing the impact of temperature fluctuations or evaporation cycles in relation to partially hydrated polymers.

We ran tests on competitors’ products to measure viscosity versus water ingress, and with four products tested between 15% and 40% water ingress, viscosity increased more than 300%.

The same test on Enviro NEO saw approximately a 20% reduction in viscosity.

Why launch Enviro NEO in Dubai specifically?

With the temperatures and temperature fluctuations in many countries in the MENA region, we believe the stability issues with hidden gum technology are likely to be a greater risk for end users in this region.

By launching in Dubai, we addressed an audience familiar with polymer based foams and highlighted our position on the stability of NEO and instability of hidden gum products.

How can end users identify partially hydrated polymer formulations?

Neither the technical data sheet nor the safety data sheet is required to provide data on the inclusion of partially hydrated polymers, so end users need to ask the manufacturer or supplier directly.

We demonstrated a simple method at the launch involving taking approximately 100 ml of foam concentrate, adding approximately 15 ml of water and stirring.

If the mixture becomes more viscous within a few minutes, the concentrate is hidden gum based.

What approvals and testing has Enviro NEO completed?

We have EN 1568-1 and -2 on heptane, and apart from heptane on EN 1568-3 we also tested Jet A-1 and hexane with fresh and saltwater.

We repeated all hydrocarbon fuel fires with a gentle type II application, which is not required under EN 1568-3 if you achieve a 1A rating with forceful application.

To the acetone and IPA required for EN 1568-4, we added methanol, ethanol, butyl acetate, ethyl acetate, acetic acid and MEK.

We tested and approved to ICAO Level B on Jet A1 and completed testing required for UL 162 on heptane, acetone and IPA, and the listing went online this week.

Third party witness testing was carried out to IMO 1312 and LASTFIRE protocols on heptane and ethanol.

We are looking to add further fuels and conduct larger scale fires in the first six months of 2026.

We view NEO as an evolution of the Enviro programme.

We are achieving the highest levels of fire performance while offering stability and real world deployability when the foam is required.

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

Fomtec confirms INTERSCHUTZ 2026 stand and Enviro NEO showcase

Fomtec at INTERSCHUTZ 2026

Fomtec has invited visitors to meet its team at INTERSCHUTZ 2026 in Hannover, Germany, where it will exhibit in Hall 13 at Stand B20.

The company said its sales team will be available for meetings and questions during the event, and that meetings can be booked in advance through its sales team page.

The company also said it will introduce its newest products at the event, including the Enviro range and Enviro NEO.

Fomtec details Enviro NEO

Enviro NEO is a synthetic fluorine-free firefighting foam (SFFF) for petrochemical, oil and gas, marine and other high-hazard industries.

The company described the product as part of its Enviro Programme and said its development was based on thousands of full-scale fire tests.

It said the formulation uses 100% hydrated polymers, which it says removes issues linked to partially hydrated polymers and unstable viscosity.

According to Fomtec, this is intended to support reliable proportioning and uniform foam performance from initial discharge through to complete extinguishment, including offshore and petrochemical oil and gas environments.

Fomtec lists test standards and applications

Fomtec said Enviro NEO is designed for use with fresh, brackish and seawater.

The company said the product is suited to coastal, marine and offshore installations.

It also said Enviro NEO has been validated through, and beyond, standards including EN 1568, UL 162, ICAO, IMO and LASTFIRE.

The Hannover event will also give visitors an opportunity to discuss the product directly with the company’s sales team.

The “Hidden Gum” problem: Fomtec examines polymer instability risks in modern SFFF foams

Fomtec explains why “hidden gum” and partially hydrated polymers threaten reliability in modern Synthetic Fluorine Free Foams

Natural polymers – large molecules made of repeating subunits (monomers) that occur in nature – have long been used to build structure and stability in formulated products.

Proteins such as silk or wool, carbohydrates such as starch and cellulose and natural rubber are familiar examples.

Many are biodegradable and in a post-PFAS landscape they are often viewed as a more environmentally responsible route to rebuilding foam blanket performance.

Their use in firefighting foam is also well established.

Natural polymers entered mainstream foam chemistry in the 1970s with the first alcohol-resistant (AR) foams.

Standard hydrocarbon foams such as FP, AFFF and FFFP, when applied to water-miscible fuels like acetone or IPA, struggle to retain a blanket: the fuel disrupts the foam structure and rapidly collapses the bubbles.

The breakthrough was the addition of natural polymers so that, on contact with polar solvents, a polymeric phase would “drop out” and form a barrier between the foam bubbles and the water-miscible fuel.

That polymer mechanism delivered more than alcohol resistance.

It also produced slower-draining foams with stronger bubble structures and improved heat resistance – performance traits that translated into more durable blankets and better burnback security.

As a result, AR-type foams became almost universally adopted from the 1990s onward as the foam agent of choice for large-scale emergency response in high-hazard industries, including scenarios involving hydrocarbon fuel fires where blanket integrity matters most.

The stability problem

From the early 1970s into the 2010s, manufacturers experimented with polymer type and dosage.

The most common natural polymers used were polysaccharides – often simply called “gums” – including Xanthan Gum and Guar Gum.

While specific chemistries differ, the operational trade-offs have remained consistent across the industry:

• Adding polymers increases concentrate viscosity.
• Keeping polymers stable in solution or suspension across the product’s service life is difficult.

Viscosity is often framed as an engineering consideration.

If you know the rheology of a product – and its viscosity response to shear – then pumps, proportioners and pipework can be specified accordingly.

Stability is a different class of challenge.

Every foam manufacturer has encountered stability failures at some point – sometimes driven by batch variation (raw materials out of specification, incorrect dosing), sometimes by storage and climatic conditions in the field.

When stability issues arise, the symptoms are operationally serious: concentrate separation, polymer settling, dehydration effects and in extreme cases near-solidification of the product.

These are operational performance problems that directly affect pumpability, induction accuracy and discharge performance.

Post-PFAS

In fluorine-free SFFF, extinguishing and burnback security now rely primarily on blanket integrity rather than fluorosurfactant film formation, echoing the fundamentals of early protein-based foams.

For many manufacturers, returning to natural polymers has therefore been inevitable.

Natural polymers can materially improve fluorine-free performance by creating slower draining foams, strengthening bubble structure and improving heat resistance.

In general, adding more natural polymer improves fire performance – particularly around sealing against hot surfaces and delivering burnback resistance in saltwater conditions, where polymers can help retain a moist, resilient blanket at the interface.

But the familiar trade-off remains: more polymer usually means more viscosity.

And in today’s installed base, viscosity now directly affects compatibility with existing proportioning and pumping equipment originally designed around different product families.

The market response

That pressure – to achieve strong fire performance without exceeding the viscosity envelope of installed systems – has driven a trend in fluorine-free concentrate design: using partially hydrated polymers to keep “in-can” viscosity attractive while still delivering polymer benefits at the point of application.

At Fomtec, this strategy is described as “hidden gum.”

On paper, this can look like the best of both worlds: good fire test performance paired with manageable viscosity in storage.

In practice, it can embed a latent instability that appears later – after installation, after time in tanks, after exposure to humidity, temperature cycling, shear, or small amounts of water ingress.

The core issue is hydration state. A polymer that remains partially hydrated in the manufactured concentrate can continue hydrating later.

That means the concentrate’s rheology remains capable of changing over time.

In high-consequence emergency response, a product that behaves differently over time becomes a reliability hazard.

The delayed hydration failure mode

Foam systems are inseparable from water.

They connect to water supplies, they live in humid environments and they are handled in ways that can introduce small but meaningful water ingress over years of service.

If a concentrate contains partially hydrated polymers, then water exposure can trigger further hydration, swelling and thickening – sometimes sharply.

Fomtec developed a test protocol to examine viscosity response to water addition, normalising viscosity and then measuring how it changes as water content increases.

When testing three of Fomtec’s own SFFF products, the normalised result behaved as many engineers would expect: viscosity decreased as water was added.

At 15% water addition, the viscosity dropped by roughly 20%.

However, when Fomtec obtained four competitive AR-SFFF products and ran the same protocol, the behaviour was starkly different.

All four competitor products exhibited a normalised increase in viscosity of more than three times with water addition in the range of 15% to 40%.

That difference matters because in the real world, a concentrate that thickens dramatically when contaminated with water can stress or degrade multiple points of a foam delivery chain:

• Reduced pumpability and increased pressure drop
• Proportioner performance drift and induction variability
• Filter/strainer loading and blockage risk
• Nozzle and discharge pattern changes
• System unreliability under emergency demand

Existing viscosity response data provides sufficient basis to identify the hazard: large, unpredictable viscosity increases translate into less predictable flow, proportioning and discharge at the moment systems are expected to work without hesitation.

A metastability problem

The most serious concern with partially hydrated polymers is the potential for unpredictable viscosity increases.

It is that viscosity might increase unpredictably and that the concentrate may be in a metastable state: appearing stable and compliant at manufacture, then transitioning as conditions change.

Metastability in foam concentrates is a reliability problem because it masks risk during early evaluation and acceptance.

A concentrate can meet viscosity specifications at release while still carrying latent thickening capacity that emerges later in storage tanks, pipework dead-legs, or proportioners.

Once that happens, the system can fail in ways that appear mechanical – blocked strainers, inaccurate proportioning, low flow – when the root cause is chemical and structural.

This is why transparent disclosure of polymer strategy is operationally important.

If polymer strategy is explicit, operators can make informed engineering choices about equipment compatibility, storage controls, inspection intervals, or acceptance tests designed to surface instability before an incident occurs.

Fomtec’s stated position is that all polymer-based Enviro SFFFs use 100% fully hydrated natural polymers because the instability linked to variable viscosity from partial hydration is considered too large a risk.

The company also acknowledges that it has not yet established a quantified statistical relationship with blocked pumps or discharge impairment associated with this phenomenon, but argues that a measured viscosity swing exceeding 300% is itself enough to justify caution in high-hazard environments.

On that basis, it calls for manufacturers to declare whether their formulations rely on partially hydrated polymers.

The rush to “1×3”

Alongside chemistry pressures, there is a commercial one: the drive toward simpler portfolios and broader “one product covers more scenarios” positioning – often summarised as a push toward “1×3” solutions.

The concept is attractive: fewer SKUs, less complexity, easier procurement.

But if blanket integrity is now doing the work that PFAS chemistry previously helped with, then a 1×3 ambition raises an awkward formulation question:

How much natural polymer is required to achieve hydrocarbon performance – especially on hot surfaces and for burnback security – and how do you put that quantity into a concentrate without destabilising it?

If higher polymer content is required, manufacturers may use partial hydration to control viscosity.

And that is where the 1×3 rush can inadvertently amplify “hidden gum” risk.

A formulation stretched across a broader operating envelope often sits on tighter balances: more demanding performance targets, more variable water qualities, wider storage conditions and a larger installed base of equipment with differing capability.

Those conditions are exactly where metastability is most likely to surface.

In that sense, a 1×3 approach built on hidden gum may be even more metastable than a 3×3 strategy, because broader coverage can force higher polymer dependency and narrower stability margins while still needing to present a low in-can viscosity for market acceptance.

Performance without the hidden compromise

Fomtec accepts that partially hydrated polymer strategies are attractive when trying to combine performance with manageable viscosity.

The company states it spent more than three years evaluating whether to adopt the approach, but claims that technological breakthroughs within its Enviro Programme enabled a different route: the launch in January 2026 of ENVIRO 3×3 NEO, based on 100% fully hydrated polymers while targeting high performance levels against standards including EN 1568:2018, UL 162, IMO and also LASTFIRE and ICAO Level B.

The implication is significant for the wider market: if top-tier performance can be achieved using fully hydrated polymer strategies, then reliance on partial hydration becomes a clearer formulation choice, particularly in high-hazard hydrocarbon risk where long-term reliability is the primary requirement.

What should change?

The reintroduction of natural polymers into fluorine-free SFFF formulations has delivered real performance benefits.

But the method of incorporation – fully hydrated versus partially hydrated – should now be treated as a safety-critical design choice, not a minor formulation detail.

Partially hydrated polymers may deliver impressive lab and test-house performance and an attractive in-can viscosity while also introducing latent instability that expresses under the most common real-world stressor of all: water.

When water exposure can trigger delayed polymer hydration and viscosity swings of several hundred percent, the concentrate’s behaviour becomes variable after installation – introducing uncertainty into pumpability, induction accuracy and discharge performance.

Foam concentrate evaluation must go beyond controlled extinguishment tests and include long-term reliability questions: how the product stores, how it tolerates water ingress and humidity, how its rheology evolves and how consistently it proportions and discharges across the full range of realistic operating conditions.

As fluorine-free foams become the global norm, transparency around polymer hydration strategy should be viewed as an operational requirement.

In firefighting foams, performance includes long-term behaviour in operational storage and real-world system activation.

It is what happens years later, in the field, when the system is activated and everything depends on the foam flowing exactly as intended.

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

Cleaner concentrate choices: Inside the global SFFF market expansion

IFSJ’s market report tracks the global SFFF market, sizing demand, forecasts, policy drivers, adoption by region and procurement issues for airports and industrial sites

Synthetic fluorine-free foams (SFFF) are moving from limited use to standard specification for Class B suppression in many sectors.

This shift is being driven by tighter PFAS regulations, the financial burden of managing legacy AFFF inventories and greater scrutiny of foam chemistry by buyers, regulators and insurers.

Airports, petrochemical facilities, marine terminals and municipal fire departments are updating procurement frameworks and operational procedures as they assess performance criteria alongside environmental and legal considerations.

This report examines the global SFFF market, focusing on current valuation, projected growth, adoption drivers and regional demand patterns.

Market overview

SFFF forms part of the broader PFAS-free firefighting foam segment, which remains smaller than the legacy fluorinated foam market but is expanding rapidly.

According to Fact.MR, PFAS-free firefighting foams are projected to grow from $310.0 million in 2026 to $937.3 million by 2036, reflecting a compound annual growth rate of 11.7%.

Within this category, synthetic detergent-based fluorine-free foams account for about 44% of the segment, placing the estimated SFFF market value at approximately $136 million in 2026 and projected to reach about $412 million by 2036.

Future Market Insights reports similar expansion trends, forecasting PFAS-free foam growth from $346.3 million in 2026 to more than $1 billion by 2036.

The wider firefighting foam market remains substantially larger.

According to Custom Market Insights, the total global firefighting foam market was valued at approximately $5.82 billion in 2024 and is projected to reach $7.57 billion by 2034.

The PFAS-free segment is expected to account for an increasing share of this total as replacement cycles accelerate.

Strengths

SFFF provides an alternative to fluorinated concentrates while maintaining operational capability for Class B suppression.

This transition can simplify chemical management and reduce the long-term liabilities associated with PFAS detection in soil, groundwater and infrastructure.

Manufacturers are developing SFFF formulations designed for compatibility with fixed suppression systems, mobile monitors and portable equipment, subject to validation testing.

This compatibility allows agencies and industrial operators to transition while maintaining existing infrastructure where feasible.

Technical improvements in polymer hydration and concentrate formulation have improved viscosity stability and proportioning reliability, which supports consistent performance during storage and discharge.

This reliability is particularly relevant in environments where foam systems may remain inactive for extended periods.

Alcohol-resistant SFFF variants are expanding operational coverage for facilities handling polar solvents such as ethanol, methanol and acetone.

This allows sites to standardize inventory across multiple hazard classes, reducing storage and logistics complexity.

Challenges

System compatibility verification remains one of the primary barriers to adoption.

Many operators must conduct proportioning tests, discharge verification and documentation to confirm performance with their specific equipment.

This process can require technical support, downtime and capital planning.

Application techniques for fluorine-free foams may differ from legacy fluorinated foams, particularly in low expansion applications.

This requires updated training procedures to ensure effective use in emergency conditions.

Product approval and certification availability can also limit supplier selection.

Buyers often require listings from recognized testing bodies or approval from authorities having jurisdiction, which can extend procurement timelines.

In addition to concentrate replacement, organizations face costs associated with the removal, disposal and remediation of legacy AFFF systems.

Cleanup of contaminated infrastructure, wastewater and soil can represent a large share of transition expenditures.

Recent developments

Regulatory changes are accelerating the transition toward fluorine-free foams.

According to the European Commission, new restrictions on PFAS in firefighting foams took effect in October 2025, with phased transition timelines depending on application.

In the United States, the Federal Aviation Administration has approved fluorine-free foam use at Part 139 airports, aligning with Department of Defense specifications published in January 2023.

According to the American Association of Airport Executives, airports are actively transitioning to fluorine-free concentrates and expanding procurement programs.

Legislative funding has also supported adoption.

According to the International Association of Fire Fighters, US legislation has allocated $350 million to support airport foam replacement and cleanup, along with $30 million for vehicle modifications and related infrastructure updates.

Product development continues across multiple manufacturers.

For example, Fomtec introduced Enviro NEO in January 2026, an SFFF concentrate designed for petrochemical, oil and gas and marine applications, reflecting ongoing investment in fluorine-free formulations.

Regional insights

North America is one of the largest SFFF adoption regions, driven by airport compliance requirements, military transition programs and litigation exposure related to PFAS contamination.

Municipal fire departments and industrial operators are also incorporating fluorine-free foam into procurement planning.

Europe is progressing rapidly due to regulatory enforcement and environmental compliance frameworks.

Industrial operators, airports and municipal services are aligning procurement with regional PFAS restrictions and national phase-out schedules.

Asia Pacific presents strong growth potential due to expanding aviation infrastructure, industrial development and regulatory activity.

According to Airservices Australia, fluorine-free foams have already been deployed across Australian civilian airports, demonstrating early transition within the region.

The Middle East is seeing adoption primarily within petrochemical, marine and energy sectors, where large-scale fixed suppression systems require fluorine-free concentrates compatible with seawater and high hazard fuels.

Latin America and Africa remain emerging markets for SFFF adoption.

Uptake is concentrated in oil and gas, mining, ports and aviation sectors, where compliance with international insurance and operational standards is driving procurement decisions.

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

Fomtec introduces Enviro NEO fluorine-free foam for high-hazard firefighting

Enviro NEO and the shift to fluorine-free foams

Fomtec has introduced Enviro NEO, a synthetic fluorine-free firefighting foam developed for use in high-hazard industries including petrochemical, oil and gas and marine applications.

The company said the product is intended for environments where consistent performance is required across different fuels, water qualities and application systems.

Enviro NEO is described as the latest outcome of Fomtec’s Enviro Programme, which the company said is based on thousands of full-scale fire tests.

The product is described as being suitable for use in demanding offshore and petrochemical settings.

Formulation, fuels and application systems

Fomtec said Enviro NEO uses 100% hydrated polymers to avoid issues associated with partially hydrated polymers and unstable viscosity.

The company said this approach is intended to support reliable proportioning and uniform foam performance from initial discharge through to extinguishment.

Enviro NEO is described as being designed for use with fresh, brackish and seawater, making it suitable for coastal, marine and offshore installations.

Fomtec Enviro 3×3 NEO is described as a sixth generation alcohol resistant synthetic fluorine-free firefighting foam concentrate with no intentionally added fluorinated surfactants and polymers (PFAS).

The product information states it is effective on both hydrocarbon and polar solvent fuel fires at a 3% concentration.

Its suppression mechanism is described as using a foam blanket to block oxygen, cooling from the foam’s water content and prevention of re-ignition on extinguished fuel surfaces.

When applied to polar solvents, the product is described as forming a polymeric membrane that enables effective extinguishment, including on foam destroying liquids such as MTBE.

Proportioning, storage and industry context

Fomtec said Fomtec Enviro 3×3 NEO contains no partially or un-hydrated polymers and is not subject to viscosity increase caused by water ingress.

The product information states a 3% proportioning ratio is intended for hydrocarbon fuels and polar solvents, with 0.3% to 1% recommended for Class A fires depending on application method and discharge device.

The foam is described as suitable for low and medium expansion use, including mobile firefighting with foam branchpipes and monitors, as well as fixed systems designed around recommended application rates and durations.

Typical data listed includes a clear yellowish liquid appearance, a specific gravity at 20°C of 1.06 plus or minus 0.02 g/ml, a pH range of 6.5 to 8.5 and a freezing point of minus 14.6°C.

The recommended storage temperature is listed as minus 14 to 55°C, with shelf life in excess of 10 years stated for temperate climates when stored in original unbroken packaging.

Fluorine-free foams have become a growing focus across the fire safety sector as operators and asset owners assess the long-term environmental and operational implications of fluorinated substances in firefighting agents.

Fomtec also describes the wider Enviro by Fomtec range as non-PFAS foam concentrates intended for emergency response and system applications across Class A and Class B hazards, including low, medium and high expansion discharge devices.

Enviro NEO is described by the company as having been validated through fire testing standards including EN 1568, UL 162, ICAO, IMO and LASTFIRE.

Evolving formulations: How Fomtec navigated C8, C6 and SFFF development challenges

Magnus Johnsson, R&D specialist at Fomtec, details the move from C8 to C6 and SFFF foams for regulatory and operational progress

The move from long-chain C8 foams through C6 formulations and now into synthetic fluorine free foams (SFFF) has reshaped the firefighting sector.

Meeting the performance requirements of UL, ICAO, military and other test regimes has required extensive development and live fire testing on varied fuels.

At Fomtec, this is a hands-on process, with Research & Development staff directly engaged in large-scale fire trials.

Working alongside Fomtec’s chemists on the formulation and evaluation of new foam concentrates, Magnus Johnsson has played a central role in bridging laboratory research with real-world fire testing.

He oversees the company’s large-scale fire testing programmes to international standards, including EN 1568, UL 162 and FM 5130, and acts as Fomtec’s lead firefighter during these trials.

In this interview, he discusses his experience in product development, the challenges of meeting diverse certification requirements and the key focus areas driving current foam research.

How would you describe the journey from C8 foams to C6 and now to SFFF, and what has it meant for your work in R&D?

C8 to C6 was billed a “small change” of a fluorosurfactant, but in reality it involved reformulation of all our PFAS-containing foam agents and recertification.

Reformulating the higher-performing foams such as the UL/FM sprinkler foams or the US DOD Mil Spec was more involved than we thought it would be.

Moving to SFFF was something we started back in 2011, some five years before the move from C8 to C6 needed to be completed.

This SFFF journey was, and continues to be, a rollercoaster ride, as we are pretty much starting with a clean piece of paper with the formulations.

What defines C8, C6 and SFFF formulations, and why has the sector evolved through these stages?

In very basic terms, the 8 and the 6 relate to the number of carbon atoms in the chains of the fluorochemicals that are used within the foam concentrate.

SFFF is the acronym for Synthetic Fluorine Free Foam and is the term adopted by NFPA, UL, FM and Fomtec to cover a foam concentrate with “no intentionally added PFAS.”

The driving force for the journey through these phases is environmental concerns from the family of chemicals called PFAS.

PFAS are a large group of man-made chemicals where ongoing research indicates that they are extremely persistent, and some are also toxic and bioaccumulative.

What insights do you gain from taking part in live fire testing as both developer and firefighter?

Everything we do in the laboratory has to be validated in the fire tests, and I can’t imagine how I could do my lab work effectively if I was not involved with the fire testing.

Some test standards such as UL topside or Mil Spec require active firefighting and have pass/fail criteria based on extinguishing times.

Being the lead firefighter for product development to these standards is essential.

This is even more important with the development of SFFFs, as they can extinguish as quickly as a PFAS-based foam, but different techniques are required.

How do UL and MIL-SPEC test standards differ, and why must performance be assessed under each?

It has to be accepted that the authorities setting the fire performance standards and the associated test protocols do so as they believe that they are the most appropriate for their application.

Comparison between a product’s performance to one standard against another is rarely possible, and as we move to SFFF formulations I would suggest that this comparison is even more difficult.

Variables include the size and shape of the test pan, the fuels, the nozzle, the flow rates and application times.

Then we have different preburn periods and foam application times, as well as the criteria for pass or fail.

For example, the UL test pan is rectangular and 50 ft², whereas the Mil Spec pan is circular and 28 ft², and the test fuels are heptane for UL and gasoline and Jet A for Mil Spec.

What additional benefits come from running wider fixed-head and sprinkler tests beyond standard requirements?

Early on in the development work of our SFFFs, we began to see greater variability of performance with fuels which the authorities such as UL and FM had for many years placed into groups.

While we did see variability with hydrocarbon fuels, it was the polar solvents where we experienced greater variations.

It was MEK that first highlighted this, as Enviro ARK is a very strong performer on acetone and was expected to show similar performance with MEK.

This was not the case, and we needed to almost double the application density to extinguish and achieve the burn-back performance required by FM.

We realised that there are likely many chemicals being stored that we just don’t have the fire data on, and so we spent about two years developing an estimation tool that looks at some of the physicochemical properties of a chemical and then predicts how we should approach it in terms of application density.

We obviously did need, and continue to test, different chemicals to validate the tool.

What are your main R&D priorities, and what current trends are influencing that development work?

For some time now, we have been looking to improve the Enviro range’s performance with saltwater, but without resorting to using partially unhydrated natural polymers in the concentrate.

Fomtec maintains that the use of partially unhydrated polymers just reduces an already small window for stability of the foam concentrate, and it has taken many formulations and tweaks to finally meet this challenge.

We have been in the fire lab and at test houses over the past few months validating our findings and adding approvals.

How do you see foam technology evolving, and where do you expect to see the most progress?

I have to believe that SFFFs will go the way of AR-AFFFs, and we will start to see better-performing low-viscosity products.

At Fomtec, we have already launched our IMO-approved Enviro SEA range, for the ARFF mission the Enviro AIR, and to meet the needs of the US DOD, our Enviro MIL.

This was originally published in the November 2025 Edition of International Fire & Safety Journal. To read your FREE copy, click here.

The polymer problem: Fomtec challenges industry dependence on unstable polymer systems

John Ottesen, Founder and CEO at Dafo Fomtec AB, discusses developing a high performance SFFF without partially hydrated natural polymers

Across many sites the practical work of replacing PFAS-based foams has begun, with attention turning to whether alternatives can deliver recognised fire test performance while fitting into existing proportioning and storage arrangements.

That focus has brought polymer choice to the fore because it strongly influences drainage, heat resistance, viscosity and long-term behaviour in service.

Fluorine based foams such as FP, AFFF, FFFP and their alcohol resistant derivatives are being phased out due to the persistence of PFAS chemicals and the health and environmental impact of certain identified members of the PFAS group.

Attention has shifted toward synthetic fluorine-free foams (SFFF) as we look to replace the PFAS foams with alternatives offering similar firefighting performance.

These foams also promise environmental safety, but as we strive for equivalency in performance many of them introduce a different kind of risk: reliance on polymer chemistry and specifically partially hydrated natural polymers.

Polymers in firefighting foam

The use of natural polymers in firefighting foams is not a new technology, having first emerged in the 1970’s with the early alcohol resistant foams.

Standard hydrocarbon foams such as FP, AFFF and FFFP when applied to a water miscible fuel such as acetone or IPA are not able to retain a foam blanket.

Foam chemists found that the addition of natural polymers into the foam concentrate allowed a polymeric layer to drop out and form a barrier between the foam bubbles and the water miscible fuels.

These polymers had additional benefits to the performance of the firefighting foam as they produced slower draining foams and the stronger bubble structure often led to improved heat resistance.

These performance enhancing features led to Alcohol Resistant foams becoming almost universally adopted as the foam agent of choice for emergency response firefighting on large fires in the high hazard industries on hydrocarbon fuel fires since the 1990’s.

From the early 1970’s into the 2010’s manufacturers experimented with different polymers and quantities in their foam concentrates as they wrestled with fundamental issues:

  • The addition of polymers increased the viscosity of the foam concentrate
  • Maintaining these polymers in solution or suspension through the life of the foam concentrate, also talked about as the stability of the foam

The question of viscosity can be discussed as an engineering issue because if you know the viscosity then the equipment and system can be designed accordingly to handle the foam concentrate, with proportioning and pumping selected to suit the measured rheology.

Of course, the viscosity and the shear rates must be known and remain constant for those assumptions to hold.

Stability on the other hand is something that every foam manufacturer has faced at some point in time, whether due to a batch issue, raw materials out of specification or incorrect quantities in the batch, or due to storage and climatic conditions with their clients, and when stability issues occurred what was typically seen was separation of the foam concentrate with the polymers either sinking or floating separated from the surfactant mixture.

Over 30 plus years of manufacturing these products the manufacturers have been able to determine the best combination of polymers and quantities to achieve the optimal balance of viscosity, fire performance and achieve a safe window of stability for the concentrate.

For Fomtec this involves adding our polymer combination up to around 1% by volume in our top performing 3 x 3 products.

SFFF’s and polymers

With the demise of PFAS containing foams, Fomtec, along with the other foam manufacturers has had to develop new formulations accepting that like the early pure protein foams we are now entirely reliant on the blanket integrity for our extinguishing and burnback security.

Fomtec returned to natural polymers to improve performance by creating slow draining bubbles with good heat resistance.

The formulation approach remains in that increased polymers leads to a more viscous foam concentrate and potential stability issues with the concentrate.

With the transition to fluorine free foams more emphasis on viscosity was inevitable due to capabilities of existing equipment and this desire to have the combination of fire performance and a lower viscosity has seen a number of manufacturers formulating with partially hydrated polymers, or what we at Fomtec like to call hidden gum.

While effective in the lab and the fire test house, this approach introduces vulnerabilities that can compromise firefighting performance in the field.

The partially hydrated polymer challenge

Water sensitivity and storage instability

Polymers are also highly sensitive to moisture during storage.

In humid environments or when water ingress occurs in foam storage tanks, partly hydrated polymers will hydrate if they come into contact with water.

This causes them to swell and increase the viscosity of the concentrate.

This can occur as lumps or more generally an increase in viscosity that can lead to system malfunction.

The risks include:

  • Blocked pumps and nozzles, reducing delivery capacity
  • Unpredictable viscosity, disrupting proportioning accuracy
  • Batch-to-batch performance variability, leading to performance variability

System-level risks in fire protection

In applications such as aviation hangars, petrochemical terminals, offshore installations and chemical processing plants it is difficult to observe polymer behaviour inside fixed systems during transition projects.

Concentrate pipelines can be complex and impossible to inspect, so confirming that all cleaning water is removed before filling new concentrate can be very challenging, and even a small amount of retained moisture can influence the behaviour of a partly hydrated polymer once the system is back in service.

How competitors still depend on polymers

Most foam manufacturers continue to rely on partially hydrated polymers as the foundation of their SFFF performance.

This dependency creates a balancing act between the need for lower stable viscosity and the risk of hydration variability.

It is a matter of creating a finely balanced formulation where the partly hydrated polymers are restricted from developing viscosity, and this finely balanced formulation can be very sensitive to ambient conditions leading to instability.

Adjustments to polymer type and concentration have offered incremental improvements, but none have solved the fundamental hydration problem.

This means that across the industry many partially hydrated polymer-based foams still face the dual risks of instability and viscosity changes in real world use.

Dafo Fomtec AB continues to follow a fully hydrated path

Fomtec has always used formulations based on fully hydrated polymers and thus raising the bar making it more challenging to achieve the highest ratings in some fire performance standards, specifically with burnback performance with saltwater.

Now, through proprietary formulation technology, Fomtec has launched a new generation of Enviro high performance foam agents based on fully hydrated natural polymers.

This is an evolution through 15 years of research and development in the Enviro Program and more than 3500 fire tests.

No loss of performance

The most remarkable aspect of this innovation is that Fomtec’s fully hydrated polymer foams perform at the highest level without compromise.

Internationally certified: independent testing shows that Fomtec’s foams meet or exceed EN 1568, ICAO and UL162 requirements for extinguishment and burn-back resistance.

Stable storage life: with fully hydrated polymers, with no polymers to hydrate or degrade, concentrates remain consistent.

Reliable system delivery: no lumps, gels or clogging means foam systems work as designed in real emergencies.

Water-quality independence: performance is consistent across different types of water supplies.

This combination of established chemistry and proven fire performance sets Fomtec apart from every other foam manufacturer globally.

Regulatory and environmental context

The timing of this breakthrough is significant.

Across Europe, North America and Asia-Pacific, regulations are tightening on both PFAS chemicals and the performance standards for their replacements.

Users are under pressure to:

  • Phase out PFAS based foams
  • Ensure environmental compatibility of alternatives
  • Maintain or improve performance levels required by regulators and insurers

Fomtec’s fully hydrated polymer technology directly addresses these concerns, providing an environmentally sustainable solution with stable performance, which aligns with what regulators, insurers and fire brigades require.

Why it matters

Fire brigades, airports, oil and gas operators and industrial sites need confidence that their foam will perform as specified, proportion within tolerance and store without unwanted change.

By removing the dependency on partially hydrated polymers, Fomtec avoids the hydration-driven variability that can change viscosity and delivery in service, supporting a predictable transition from PFAS based agents to SFFF in existing equipment.

This was originally published in the November 2025 Edition of International Fire & Safety Journal. To read your FREE copy, click here.

Fomtec confirmed as Platinum Sponsor for IFSJ Leaders in Fire & Safety 2026

From Scandinavia to Dubai: Fomtec Takes Platinum Sponsorship at IFSJ Leaders in Fire 2026

International Fire & Safety Journal is delighted to confirm that Fomtec will be the Platinum Sponsor for the IFSJ Leaders in Fire & Safety Conference 2026 in Dubai.

The 2026 edition of IFSJ Leaders in Fire & Safety will take place on 7 May 2026 at the Grosvenor House Hotel, Dubai Marina, Dubai, UAE.

As Platinum Sponsor, Fomtec will hold the top tier commercial role at the conference, with enhanced visibility on stage, in the networking areas and across our event communications.

We are pleased to welcome Fomtec into this position as we continue to shape the programme for the next edition of our senior-level conference.

Attendees at IFSJ Leaders in Fire & Safety 2026 will be able to engage directly with Fomtec’s team on foam concentrates, fixed systems and project considerations throughout the day.

Further details on the agenda, speaker line-up and partner activities will be shared as planning progresses.

Fomtec foam concentrates and technical focus

Fomtec focuses on firefighting foam concentrates and selected foam hardware for professional fire protection.

The company is headquartered in Stockholm with manufacturing in Helsingborg in the south of Sweden.

Its portfolio includes synthetic and protein-based formulations, including fluorine-free foams for use in industrial, municipal and high-hazard environments.

Fomtec’s Enviro range of fluorine-free foam concentrates has been developed in response to regulatory change and customer demand for alternatives to legacy fluorinated products.

The company has carried out extensive full-scale and laboratory fire testing on these foams to understand performance across different fuels and application conditions.

This work has been led by John Ottesen, CEO and Founder at Fomtec, whose focus has been on using data and test results to guide product development.

Fomtec also uses predictive modelling tools to help anticipate foam behaviour on a variety of fuels based on earlier test work and formulation chemistry.

Through this combination of testing and modelling, the company aims to give end users clearer information when assessing foam choices for specific risks.

IFSJ Leaders in Fire & Safety 2026 overview

We will once again stage the IFSJ Leaders in Fire & Safety Conference as a single-day, invitation-only forum for senior fire and safety professionals.

The event gathers chief officers, senior engineers, facility leaders and technical specialists from the Middle East, Africa and other international markets.

Our format combines keynote talks, panel sessions and structured networking breaks in a focused environment.

Commercial partners are limited in number so that sponsors have more time and space to meet delegates during breaks and in the exhibition and networking areas.

As Platinum Sponsor, Fomtec will play a central part in the 2026 edition, including a dedicated presentation slot within the programme.

We expect foam concentrates, suppression system performance and transition planning away from legacy foams to feature within the broader conference discussions.

Registration and event information for IFSJ Leaders in Fire & Safety 2026 is available at https://ifsjleadersinfireandsafety.com/.

We look forward to welcoming Fomtec and our delegates to Dubai on 7 May 2026.

Fomtec Enviro MIL approved by US Navy for fluorine-free fire foam standard

US Navy confirms approval of Fomtec Enviro MIL under MIL-PRF-32725(2)

Dafo Fomtec AB has received documentation from the United States Department of the Navy confirming that its fluorine-free foam concentrate, Enviro MIL, meets the requirements of type 3 under the MIL-PRF-32725(2) specification.

The update was received on 1 April and certifies that Enviro MIL conforms to the standard for fluorine-free fire extinguishing agents intended for land-based, freshwater applications.

Fomtec stated that Enviro MIL will be added to the Qualified Products List QPL-32725.

The foam will be available in 5, 55 and 265 US gallon containers once the list is officially updated.

Fomtec maintains supply of AFFF foam under legacy US military standard

While expanding its fluorine-free product line, Fomtec confirmed it continues to produce and distribute aqueous film forming foam (AFFF) concentrates that meet the older MIL-PRF-84385F specification.

Fomtec said that its AFFF 3M is fully compatible with other concentrates made to the same US military standard.

This compatibility allows users to mix and use the foam with other approved brands without affecting performance.

Fomtec added that it will continue supplying its high performance PFAS-containing foams as long as it is legally permitted to do so.

Product availability for both freshwater and saltwater users

Fomtec noted that the fluorine-free Enviro MIL foam is formulated for use in land-based, freshwater scenarios.

For end users operating in saltwater environments, or those not yet able to switch to fluorine-free solutions, Fomtec will continue providing legacy AFFF products to meet operational needs.

The company said this dual offering ensures availability for a wide range of fire suppression scenarios, depending on specific site requirements and legal regulations.

Contact information for MIL-SPEC foam enquiries

Fomtec invited interested parties with specific requirements related to MIL-SPEC foam concentrates to make direct contact for more information.

The company advised that all product-related queries, including requests for Enviro MIL and AFFF foam concentrates, can be directed to: info@fomtec.com.

Fomtec Enviro MIL approved by US Navy for fluorine-free fire foam standard: Summary

On 1 April, Dafo Fomtec AB received confirmation from the US Department of the Navy that its Enviro MIL fluorine-free foam concentrate complies with type 3 of MIL-PRF-32725(2), applicable to land-based, freshwater fire suppression.

The Qualified Products List QPL-32725 will be updated to reflect this approval and will list Enviro MIL in 5, 55 and 265 gallon sizes.

Fomtec also confirmed it continues to manufacture AFFF 3M to MIL-PRF-84385F standard.

The company stated that AFFF 3M remains fully compatible with other concentrates certified to the same specification.

Production and supply of PFAS-based foam concentrates will continue while legally permitted.

The announcement said that Enviro MIL is intended for freshwater use, while legacy AFFF products remain available for users operating in saltwater environments or not ready to transition.

For enquiries related to MIL-SPEC foams, contact can be made via info@fomtec.com.

Predictions, performance and progress with Fomtec

John Ottesen, CEO at Fomtec, highlights the advancements in fluorine-free foam testing, documentation processes, and ongoing research to broaden emergency response capabilities for challenging fuel types

Up until now, and continuing this year, 2024 for us at Fomtec has been about carrying out extensive testing.

We have surpassed 3,000 fire tests at this point.

We are continually adding data points and approvals for our fluorine-free foams, documenting their performance when used with specific discharge devices.

Now, we are broadening the range of different kinds of fuels we test on.

There are thousands of different polar solvents, which are water-miscible fuels.

We are documenting the performance of our products on various polar solvent fuels.

The polar solvent testing challenge

In the past, testing was grouped into main categories such as: alcohols, ketones or acetates.

For example, if you tested on isopropanol, it would cover your product for all kinds of alcohols like ethanol and methanol.

If you tested on acetone, it would cover all the ketones, which is a vast group of different chemicals.

However, with fluorine-free foams, we have found that you can’t group polar solvents in that way.

We’ve seen that you can test on one ketone and get a good result, and then test on another ketone and get a very bad result.

This opened up a Pandora’s box: what do we need to do?

We have approached this challenge in two ways.

First, we are conducting fire tests on a huge array of fuels using different heads, sprinklers, or nozzles.

However, since there are thousands of fuels, it’s practically impossible to fire-test them all.

Simultaneously, we have spent the past three years developing a predictive model—a very powerful scientific tool—that enables us, based on a product’s CAS number, to predict how our foam will perform on a certain fuel.

This predictive tool allows us to give initial indications, which can then lead to the necessity of doing further fire testing.

For some predictions, we can confidently say it will work; others are borderline and require additional testing.

So now, in 2024, we have conducted a lot of additional fuel testing with our foams to broaden the scope and documentation for our products.

There are multiple sessions happening still this year, which will add data points that we use when we speak with our customers about their applications.

Advanced stationary testing

The second big focus in 2024 was that, having done so much in the realm of stationary, fixed fire protection, we wanted to look more closely into emergency response.

The fundamental difference between a fixed system and an emergency response manual system is that in a fixed system, you design it according to a standard, and if there’s an incident, the system just needs to do its job.

You can’t go in and change anything—you can’t add another nozzle or increase the application density.

It’s already fixed; it just has to work when needed.

Emergency response is very different because you can add more nozzles, increase your application density, and change your tactics.

It’s a very different environment, so we decided that 2024 would be the year we move more into emergency response.

We have spent a lot of time and effort this year participating in more large-scale fire testing.

When we talk about large scale, we’re going from the 50 square foot (4.5 square meter) size up to a few hundred square meters.

We’ve done some testing on our own in Texas on larger fires, and we’ve also taken part in sessions organized by LASTFIRE to gain a deeper understanding of how our product scales.

We wanted to see how the results from a 4.5 square meter fire translate when scaled up to 300 square meters.

Does the performance follow through, or does it fall apart?

What we’ve seen so far is that it certainly follows through—the performance is there.

However, we also see that performance depends upon the application method—the physical method you use when you apply the foam.

There are slight variances in efficiency depending on how you deploy the foam, but basically, we have seen that it performs very well when you scale up.

That’s been a significant part of what we’ve done this year, and we will continue doing more of that kind of work.

Next-generation foam

We’re always pushing for the next generation. This industry is probably into its fifth generation of fluorine-free foam now, and our eyes are fixed on generation six and seven.

There’s a lot of very interesting future formulations in our lab at the moment.

We’re squarely focused on the next generation. We’re always pushing the boundaries.

We’re booking multiple sessions for testing next year. We’re never going to stop testing because there’s always scope for improvement.

We keep adding data points, enabling safer transitions for customers.

It all comes down to when we get questions from customers like: “Will your product work in our system?” For example, this week we received an Excel sheet from a client working to protect a manufacturer of perfumes, and they had a list of 1,000 different chemicals.

When you get a list like that and they ask, “Will your foam work?”—how do you answer such a question? You have to have a huge set of data points.

Obviously, we haven’t tested all of these, but we have tested a lot of different products, which means we have a very wide data set that we can use when we make that assessment.

We’re also moving into the larger emergency response is with the aim of entering the oil and gas industry, because that’s where you find these big fires.

Going into 2024, my aim was to make a more significant impact in that market, which has actually happened.

We’ve had a couple of really good collaborations with huge multinational oil companies this year.

Going into 2025, this gives you a bit of an overview of what we’ve been up to lately.

This article was originally published in the November 2024 issue of International Fire & Safety Journal. To read your FREE digital copy, click here.