Gas detection update from Sensitron adds new interface and login system

Sensitron previews redesigned gas detection control panel

Sensitron has previewed a new control panel for gas detection systems that can support up to eight gas detectors and is set to be commercially available within 2026.

Sensitron said the product evolves from its best-selling PL4+ and was developed as part of a broader product and business development plan.

The company said the control panel was designed around day-to-day use, with a more compact form and a redesigned interface intended to improve readability and operation on site.

The new PL4 gas detection system design was developed through Sensitron’s first collaboration with AMDL CIRCLE, the multidisciplinary studio founded by Michele De Lucchi.

Sensitron said the resulting platform was designed to be adapted and customised for the group’s international markets.

Nicholas Bewick, Architecture Art Director, and Andrea Borgogni, Senior Product Designer, at AMDL CIRCLE, said: “The design is the result of a complete reconfiguration of the internal components—battery, printed circuit boards, mounting systems, etc. – arranged according to a new hierarchical order: the reorganisation of the elements has allowed the creation of an unusual pyramidal architectural form, with a redesigned main display and control panel to simplify the physical and visual interface with the entire gas safety network.”

Interface changes and compliance details

Sensitron said the new control panel includes a redesigned interface with graphics, pop-ups, directional arrows, on/off switches, drop-down menus and contextual buttons.

The company said these features are intended to help users understand the control panel more quickly without prior knowledge.

A multi-level digital login system replaces the physical key and is intended to provide greater operational control, traceability and protection.

Menus are arranged in a logical tree structure and the control panel can be configured through the display or through a PC.

PC-based configuration allows settings to be saved and replicated across similar systems, with event logs available for download for diagnostic analysis and system traceability.

Marco Passadori, Managing Director of Sensitron, said: “We chose design as a strategy to complement our technical expertise, adding an element of differentiation in a highly competitive market.

“Technology, compliance with standards, and experience are the foundations of our product development.

“The decision to introduce design stems from listening to those who use the product.

“From our ongoing dialogue with customers came the desire to create a control panel truly designed for its users.”

The control panel complies with ATEX Directive 2014/34/EU and the standards EN IEC 60079-29-1 and EN 61508 / EN 50402 (SIL1), according to Sensitron.

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.

Wireless installation advantage: Ajax Systems highlights new business models for fire installers

Wireless fire detection is reshaping installation strategies and opening new service models, writes Paul Pope, Global Head of Fire & Life Safety Business at Ajax Systems

Technology within the fire safety sector is evolving rapidly and entering a decisive decade.

Once considered a niche technology, the wireless fire detection and alarm market reached $688 million in 2024 and is predicted to exceed $844 million by 2033.

The real turning point is that certified EN54-25 wireless systems can now deliver system integrity and reliability comparable to wired installations, removing the last barrier to adoption.

For installers, it’s a chance to redefine their business model and evaluate the suitability of projects between the different technologies now available.

Professionally installed wireless systems can lead to faster project delivery, less disruption, and, with the latest technologies, access to new revenue streams like real-time remote monitoring, predictive maintenance, and instant alerts.

In a world where efficiency and compliance rule, wireless systems can provide the installers with the tools and options to grow their business.

The challenge for fire installers today  

For decades, wired fire detection and alarm systems have been the gold standard, and they still secure their place in the overall solution to the design and fire strategy for many buildings.

However, due to the complexity and disruption associated with cable installation, it can be time-consuming and invasive to building operations.

In many cases, a long installation schedule due to unforeseen circumstances can increase the final project cost.

That’s why there is an increase in fire safety specialists reassessing the fire strategy and opting for wireless systems.

The industry is also facing a shortage of skilled engineers, which is a major workforce concern.

The NFPA research revealed  that 50% of the skilled  workforce shortages will be the main concern for  2025, and this  shortfall is expected to continue growing.

This challenge highlights the need to increase the future workforce by attracting the next generation of fire professionals who may be less interested in labour-intensive work.

Advanced wireless technology can help to reduce this barrier, making the noble profession of the fire industry more attractive to technology-oriented professionals.

Additionally, the market is struggling with competitive pressure.

Clients want faster, flexible, and less intrusive installation, and wired solutions make it difficult to meet those expectations.

Not upgrading with wireless means turning away almost half of potential clients, especially in commercial projects where wireless is becoming a viable alternative choice.

What’s at stake if installers do not adapt 

Considering the challenges above, adapting to new market demands is an ongoing process, for all businesses.

The wireless fire detection and alarm market is growing at nearly 8% annually, and installers who do not adapt risk losing access to this growth and missing out on business opportunities.

Around 46% of facility managers already choose wireless systems as their first option for upgrades or retrofits.

There is a risk of losing a competitive advantage.

More than 64% of fire installers now prefer wireless systems over wired ones for their flexibility and scalability.

Falling behind means watching the revenue flow to better-prepared companies.

The numbers speak for themselves — due to enhancements in technology, the EN54-25 wireless sector is getting stronger.

The holistic approach in maintaining fire safety has always been the main driver for fire professionals, and the choice available in both wired and wireless systems  today is impressive.

The decision is with the professionals to evaluate which technology is suitable for each project and, where appropriate, seize the growth and benefits that wireless unlocks.

Turning wireless into a competitive advantage

Demand for wireless fire detection and alarm systems is  rising  in the commercial sector, where the stakeholders’ value is reduced  by 35% compared with wired systems.

At the same time, installation companies benefit from faster installations, more capacity, and time for new revenue streams, including services like integrated smart systems, proactive maintenance contracts, or managing larger projects.

The question most frequently asked is related to the performance of the batteries.

The latest technologies  can deliver  battery capacities between 5 and 7 years, supported by continuous condition monitoring and low-battery alerts, sent to the fire control panel and/or remote management systems.

Providing real-time monitoring notifications and secure on-site and remote on-demand system health checks provides the responsible person(s) and service organisations with the information to know exactly when replacements are needed.

In commercial settings, planned maintenance visits make replacements easy.

This shifts battery management from a problem to a predictable, manageable task.

Wireless fire detection and alarm systems can open up new opportunities in healthcare, logistics, education, museums, heritage sites, construction sites, vacant properties, energy infrastructure, and retail and many more.

Wireless EN54 fire detection for commercial and municipal sites 

Some facilities are unsuitable for wired systems , either because wiring them to the local or national codes of practice  is complicated or impossible to do so.

For example, where there is a risk of asbestos or architecturally sensitive building fabric disturbance, or where the operation of the facility would be seriously disrupted.

 In some cases, hybrid systems are used, where some of the fire alarm system is  connected wirelessly, while other devices are wired.

 EN54-25 certified wireless systems with the additional EN54-13 compatibility certification, precisely match the operating realities of commercial and municipal estates, offering continuous supervision and strict compliance.

Legionella and the need for next generation detection

As Legionella continues to hit the headlines, Greg Rankin CEO at Hydrosense advises on the steps health and safety professionals can take to alleviate what is becoming a growing – and largely still underestimated – public health risk

Early into 2026, we have already witnessed significant Legionella outbreaks across the US, including a deadly cluster in Ector County, Texas, cases linked to a major apartment complex in Harlem, New York City, and an outbreak associated with a Las Vegas casino.

While the specific circumstances behind each incident may differ, one truth that remains abundantly clear is that Legionella cases are rising at an alarming rate across the US.

The result is that the threat to public health from Legionnaires’ disease – a potentially fatal form of pneumonia caused by inhaling Legionella bacteria – will likely further escalate unless decisive action is taken, at pace.

But the big question is – what exactly?

A rapidly rising risk

Before answering that question, it is important to first explain the several factors attributed to Legionella’s recent ascent.

As most health and safety (H&S) professionals will already know, Legionella thrive in warm, stagnant water with the optimal temperature range for growth between 77°F to 113°F.

 As climate change continues to alter environmental conditions, rising average temperatures, prolonged warm seasons and shifting rainfall patterns are contributing to more favorable conditions for Legionella growth within building water systems.

At the same time, many distribution systems and plumbing networks across the country suffer from aging pipes, oversized layouts and stagnant dead-ends.

These low-flow zones diminish disinfectant residuals, promote biofilm formation and create pockets where Legionella can multiply unchecked.

Many legacy plumbing systems also lack modern design features, such as efficient temperature control and disinfection mechanisms, that help prevent bacterial growth.

Combine all these factors, and it may be easy to see why Legionella cases in the US have seen a 1,000 per cent increase in the past two decades alone and in an upward trajectory that experts predict will continue if not addressed.

The result is that it is becoming more important than ever for H&S professionals to pay extra diligence to how they assess, test and control the risk of exposure to Legionella bacteria in the face of increasing risk.

For many though, there remains a certain lack of clarity and standardization about what best approach to take.

Best practice, beyond compliance

Of course, most H&S experts will be well acquainted with the widely-adopted ASHRAE Standard 188 developed by the American Society of Heating, Refrigerating and Air-Conditioning Engineers (ASHRAE), which provides a framework to implement comprehensive water management programs that proactively control risks related to the growth and transmission of Legionella in building water systems, including regular monitoring and maintenance.

Many states and cities also stipulate their own specific standards, especially in jurisdictions with recent outbreaks or stricter health requirements.

From our extensive experience in the Legionella field, though, we believe that current recommended practice simply doesn’t go far enough and there is scope to do much more to raise the bar on safety through a more robust and proactive approach to water safety.

For example, one of the most critical weaknesses exposed by many recent outbreaks is the lag between contamination and confirmation.

Traditional Legionella testing methods rely on laboratory culturing, which takes up to ten days to deliver results.

Yet Legionella can double in a day.

In a large building or cooling system, that delay can mean the difference between early intervention and widespread exposure.

Water samples can also get damaged in the transportation process, potentially killing the Legionella inside and leading to a false negative result.

In addition, culture-based testing cannot detect viable but non-culturable (VBNC) Legionella, which, though dormant, can resuscitate and cause an infection.

The result can be a false sense of security, with the potential for lab results to state a negative outcome when repeated tests confirm non-conformance.

Arguably, then, as the challenges posed by Legionella evolve, there is a clear case for H&S professionals to reconsider their testing strategies and embrace more innovative, efficient methods.

One such example can be found in the latest generation of rapid Legionella testing which has been purposefully designed to overcome the limitations of traditional Legionella detection by providing on-site testing without the need for lab facilities.

Incredibly easy to use, these tests enable duty holders to inspect water systems in only 25 minutes and provide an accurate and reliable result on the presence or absence of Legionella pneumophila bacteria – the primary cause of Legionnaires’ disease.

The benefits of using this smart and simple method in addition to traditional testing methods are vast.

Principally, rapid testing facilitates early detection of Legionella, which is essential in preventing outbreaks.

In this way, the ability to gain an immediate picture of Legionella empowers H&S professionals to react promptly to contamination and take appropriate action, thereby significantly minimizing the risk of exposure.

Improved resource allocation is another major benefit whereby it’s possible to action remediation efforts almost immediately upon detection rather than having to wait on delayed lab results.

Further down the line, these tests can also support immediate remediation by enabling real-time verification of post-remediation effectiveness, rather than waiting nearly two weeks for laboratory confirmation.

In this way, by implementing rapid testing methods, H&S professionals can demonstrate a robust, proactive health and safety approach that goes even beyond compliance and, in turn, secure peace of mind in knowing they have done the utmost to alleviate what is an increasing Legionella risk.

Making Legionella control water-tight

If the recent flurry of Legionella outbreaks seen this year has taught the H&S world anything, it is that we cannot afford to underestimate the scope of Legionella risk.

In the context of what is becoming a increasingly complex public health concern, effective management and control can only be achieved by going beyond compliance with proactive monitoring, rigorous control measures and a culture of continuous oversight that is truly water-tight.

For further information, please visit: https://hydrosense-legionella.com/

About Hydrosense

Hydrosense is on a mission to make Legionella detection easier, faster, and more effective than ever before with its innovative, world-leading rapid Legionella testing solutions.

Ideal for industries that require more stringent action levels, Hydrosense overcomes the limitations of traditional lab-culture testing with its innovative Hydrosense Legionella testing kits.

This includes the Hydrosense PRO range, which can detect the presence of Legionella pneumophila serogroups 1-15, and the Hydrosense ONE range, which can detect the presence of Legionella pneumophila serogroups 1 only.

Easy to use, accurate, and with results delivered in just 25 minutes, the result is the early detection of problems, speedy remedial action, and a reduction in potential exposure and the associated risks.

Halma trading update reports continued growth across life safety technology businesses

Halma trading update points to full-year growth

Halma has reported continued progress ahead of the end of its financial year, with the group expecting mid-teens organic constant currency revenue growth for the year ending 31 March 2026.

In a trading update released on 12 March, the global group of life-saving technology companies confirmed that second-half trading to date remains consistent with the upgraded guidance set out in its half year results published in November 2025.

The group expects to deliver a 23rd consecutive year of record adjusted profit.

Growth has been broad-based across Halma’s portfolio of technology companies, which operate across sectors including safety, environmental monitoring and healthcare.

Order intake remains ahead of revenue in the year to date and also ahead of the comparable period last year.

Premium growth in photonics within the Environmental & Analysis Sector continues to support revenue performance.

Halma expects full-year cash conversion to remain in line with its KPI of 90%.

The appreciation of Sterling is expected to create a negative currency translation effect on the group’s results.

Halma continues acquisition investment across group sectors

Halma has completed five acquisitions during the financial year to date, including three since the half year ended on 30 September 2025.

These acquisitions span the group’s three operating sectors.

Total investment in acquisitions has reached a record £451m on a maximum total consideration basis.

The company reports that its acquisition pipeline remains active across all three sectors.

Halma will publish its full year results for the year ending 31 March 2026 on 11 June 2026.

FECA and Fire and Emergency New Zealand settle leadership contract

New Zealand agreement covers leadership roles

Fire and Emergency New Zealand has confirmed a new collective employment agreement with the Fire and Emergency Commanders Association (FECA), covering operational firefighting management, District Commanders, Assistant District Commanders and senior specialist positions.

Fire and Emergency New Zealand said FECA members ratified the agreement on 2 March 2026 after 14 days of negotiations and an Offer to Settle made on 23 February 2026.

The agreement was presented as applying to leadership roles across operational command and specialist functions.

Fire and Emergency Chief Executive Kerry Gregory said: “This agreement is about strengthening leadership across Fire and Emergency so we can deliver the best possible outcomes for our communities.

“Securing a new agreement is critical to our leadership capability, operational stability, and our ability to deliver on our strategic direction and organisational change objectives.

“Just as importantly, it ensures our frontline leaders are aligned, supported, and empowered to perform at their best.

“It is an important milestone to have this contract settled, as it builds on the progress we made last September when we signed a Strategic Relationship Agreement with the United Fire Brigades’ Association (UFBA), who represent more than 650 volunteer brigades across the country.”

FECA backs relationship and change measures

Fire and Emergency New Zealand said the agreement formalises FECA’s support for key leadership and cultural change initiatives and reinforces relationships with volunteers.

FECA President Geoff Purcell said: “Our members command, lead, manage and support paid and volunteer firefighters across the motu.

“This agreement acknowledges their professionalism, their national responsibilities, and their commitment to serving communities.

“We’re particularly pleased to see the Strategic Relationship Panel formalised, providing a structured and collaborative forum where operational leaders can work closely with Fire and Emergency on issues that matter most.”

Gregory thanked FECA for what he described as a constructive approach to the settlement and said the agreement allows the organisation to focus on protecting people, the environment and communities across Aotearoa New Zealand.

Ranger acquires MarkOne to expand West Midlands fire safety coverage

Ranger expands in the West Midlands

Ranger Fire & Security has acquired Midlands-based MarkOne Safety Solutions, extending its presence in the West Midlands and adding to its fire safety service capacity across the UK.

Ranger Fire & Security announced the deal on 11 March and said it was the group’s 16th acquisition since its formation in early 2024 and its third acquisition of 2026.

MarkOne Safety Solutions works in the design, supply, installation, commissioning and maintenance of fire safety and emergency lighting systems.

The business has operated for nearly 20 years and serves customers ranging from small retail outlets to large multi-site corporate organisations.

Its work covers the full lifecycle of fire safety systems, from initial design and installation through to commissioning, service and maintenance.

Ranger said the acquisition builds on its earlier purchase of Ignis Fire Protection, another Midlands-based business, and is intended to improve regional resourcing, operational efficiency and service coverage.

Ranger and MarkOne leadership set out next steps

Ranger said MarkOne will continue to operate under the existing leadership of Managing Director Mark Haynes, with the same team remaining in place.

The company said the business will also gain access to wider operational support across the group, along with opportunities to work with other specialist companies in the portfolio.

Mark Bridges, CEO of Ranger Fire & Security, said: “MarkOne is an excellent addition to the Ranger Group, significantly strengthening our presence in the West Midlands.

“The team brings deep technical expertise across the design, supply, installation, commissioning and maintenance of fire safety systems, making the company a natural fit as we continue building a single, national platform to meet all fire and security needs.

“Following our earlier acquisition of Ignis Fire Protection, MarkOne further enhances our regional footprint in the Midlands and allows us to provide customers with an even broader range of high-quality fire safety services.”

Haynes said: “Joining Ranger represents an exciting new chapter for MarkOne.

“Since the business was founded, our focus has been on delivering high-quality fire safety systems for our customers, from design and supply through to installation, commissioning and ongoing maintenance.

“Becoming part of the Ranger Group allows us to build on that foundation and take the company to the next level.

“With the additional support, expertise and network that Ranger provides, we will be able to continue delivering the high standards that our customers have come to expect, while expanding the reach of our services across the region.”

Ranger acquisition strategy continues

Ranger said the MarkOne deal forms part of its strategy to bring regional operators into a national fire and security platform covering the UK and Ireland.

The company said it has backing from Hyperion Equity Partners and is seeking to grow through acquisitions as well as investment in technology and talent.

The latest acquisition adds another Midlands business to the group as Ranger continues its expansion activity in 2026.

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.

United Safety announces Reacton partnership and recapitalisation

Reacton joins United Safety in new partnership

United Safety & Survivability Corporation (United Safety) has announced a recapitalisation and strategic partnership with Reacton Fire Suppression that adds Reacton to its mobile fire suppression portfolio.

In a 9 March statement, United Safety said the agreement brings Reacton into the combined company’s product family and expands its offering across sectors including mining, heavy machinery, defence, transportation, marine, energy and critical infrastructure.

Reacton has operations in the United Kingdom, United States and the United Arab Emirates.

The company said the partnership will combine Reacton’s fire suppression technology with United Safety’s manufacturing base and international infrastructure.

The combined organisation will offer water mist, liquid, dry powder, clean agent and dual-agent fire suppression systems.

United Safety said the agreement will also maintain the Reacton and Fireward brands, along with their existing engineering standards and customer approach.

Expansion plans and customer continuity

Joseph Mirabile, CEO of United Safety, said: “This partnership marks a defining moment in our mission to save lives and protect infrastructure around the world.

“By combining engineering excellence with global scale, we are building the strongest fire suppression platform in the industry.

“I am incredibly excited about the growth opportunities ahead across Europe, the Middle East, APAC, and the Americas as we expand our ability to protect people and high-value assets in mission critical environments.”

Sam Malins, CEO of Reacton Fire Suppression, added: “This partnership is the natural evolution of the journey we began years ago.

“We built Reacton on engineering integrity, simplicity, and trust – growing deliberately, protecting our standards, and earning our reputation in some of the world’s toughest environments.

“Joining forces with United Safety allows us to preserve that DNA while scaling globally.

“I’m incredibly proud of our people and excited for what we can achieve together.

“As a result of the enhanced investment, infrastructure, and global reach, the newly combined organization is uniquely positioned to lead the next era of mobile fire protection, delivering life-saving solutions where they matter most.”

The companies said customers and partners will continue to work with the existing Reacton and Fireward brands as the combined business expands its product development work and international support.