Fire doorset testing: Why integrated fire resistance and smoke leakage testing matters

Peter Barker of Element Materials Technology explains how integrated fire doorset testing helps manufacturers demonstrate fire resistance, smoke leakage performance and prepare for future EN classification requirements

Fire-resisting doorsets play an important role in compartmentation, helping to limit the spread of fire and smoke throughout a building. Fire resistance has traditionally been perceived as the primary performance characteristic for fire doors, but smoke control is coming into sharper focus when assessing how a doorset performs as a complete assembly.

The planned withdrawal of BS 476 classifications from Approved Document B in September 2029 and adoption of EN-based classification is prompting manufacturers to review how fire and smoke performance is evidenced and classified.

For many manufacturers, that means taking a more joined-up approach to testing, combining fire resistance and smoke leakage programmes to build a clearer picture of overall doorset performance.

Why fire doorset testing is changing

Smoke leakage testing has traditionally focused on sealing systems fitted to the head and jambs of a doorset.

While that approach remains aligned with the current regulatory guidance for smoke control doors, there is now greater attention on understanding the performance of the complete assembly, including how smoke may pass through gaps at the threshold.

More recent guidance, such as BS 8214:2026 has encouraged wider consideration of threshold sealing and the contribution that the bottom gap can make to smoke leakage.

This reflects a broader move towards assessing the complete doorset rather than individual components and ensuring performance clearly links to realworld applications.

Smoke leakage testing and complete doorset performance

Many organisations still approach smoke leakage testing and fire resistance testing through separate programmes. There can be good reasons for working in this way. Product development rarely follows a straight line and designs can evolve.

However, the risk of working in this way is that important design details may be missed that need to be evaluated for both fire and smoke performance characteristics.

The result is that when smoke leakage testing has been carried out on one design and fire resistance testing on another, additional work may be required to establish how those results apply to the final doorset being offered to the market.

The process can become even more complicated when multiple product variations, sizes or hardware options are involved. Manufacturers may find themselves managing several test reports, assessments and supporting documents to demonstrate that a doorset can deliver both fire resistance and smoke control performance.

Benefits of integrated fire doorset testing

Planning smoke leakage and fire resistance testing together in a coordinated programme reduces duplication, testing schedules and project management activities. It can also help manufacturers build a more coherent technical package while reducing the risk of gaps emerging later in the process.

This becomes particularly valuable when results are intended to support extended field of application reports and classifications using the EN 13501-2 framework for doorsets. Integrated programmes can also provide greater confidence when supporting future product developments, particularly where manufacturers plan to introduce additional sizes, hardware arrangements or design variations.

Integrated testing at Warringtonfire Birchwood

Demand for more joined-up testing programmes is one of the reasons Element has expanded its smoke leakage testing capability at the Warringtonfire Birchwood facility. The facility forms part of Element’s £24 million investment in fire testing infrastructure and was opened in January 2025 to support growing demand for construction product testing.

The site includes an indicative furnace for small-scale rapid testing, as well as two horizontal furnaces, two vertical furnaces and 18 preparation bays including confidentiality shields, providing capacity to support a broad range of testing requirements.

Dedicated witnessing facilities and meeting spaces also allow manufacturers to work closely with technical specialists throughout a programme. It also includes a solution that enables both fire resistance and smoke leakage testing from a single test buildup, providing manufacturers with performance data more efficiently.

The addition of smoke leakage testing allows manufacturers to access both fire and smoke testing for doorsets through a single facility and technical team. Alongside testing, Warringtonfire also provides support with technical assessments, extended field of application reports and classification services, helping manufacturers build a clearer route from testing through to the final evidence package.

Preparing for future fire doorset classification

Establishing the fire resistance performance of doorsets remains fundamental, however organisations are increasingly being asked to demonstrate how complete doorset assemblies perform across a range of characteristics, including smoke control.

Testing is also being considered alongside other conformity assessment activities, including sampling, factory production control and audit testing which are designed to provide added assurance of product performance and form the basis of accredited third-party certification schemes, such as Q-Mark and Certifire.

The Warringtonfire-Birchwood facility provides Fire doorset testing

Manufacturers are being asked not only to demonstrate how products perform, but also how that performance is evidenced and maintained throughout the supply chain. Early engagement with testing specialists is also important.

By discussing intended applications, certification objectives and future product development plans before a programme begins, manufacturers can identify potential limitations and opportunities much earlier in the process.

In many cases, this helps avoid additional cost, project delays and unplanned testing further down the line. By considering fire resistance and smoke leakage together from the outset, organisations can simplify assessment and classification activities while building stronger foundations for future product development.

Supporting manufacturers from fire doorset testing to classification

The Warringtonfire Birchwood facility provides fire resistance testing, smoke leakage testing, technical assessment, extended field of application and classification support from a single location.

Whether the objective is supporting a new product launch, extending an existing product range or preparing for future classification requirements, Warringtonfire’s technical specialists can help develop testing programmes aligned with commercial and compliance objectives.

To find out more about Warringtonfire’s fire resistance and smoke leakage testing services at Birchwood, visit warringtonfire.com to discuss your requirements.

Britannia Fire launches P50 Monnex fire extinguisher

Britannia Fire has added to its P50 composite fire extinguisher range with the introduction of Monnex, a specialist, high performance dry powder for high-risk industrial settings.

Monnex powder is non-conductive and rapidly extinguishes Class B (flammable liquids) and Class C (flammable gas) fires. It works differently to standard dry powder, breaking into smaller particles in intense heat which increases its surface area and coverage to extinguish fires quickly and more efficiently.

Britannia Fire’s P50 Monnex fire extinguishers are designed for high-risk sites including petrochemical plants, airports, fuel depots, power stations and manufacturing facilities. They are also particularly suitable for isolated, offshore locations such as ships or oil and gas facilities.

All P50s are environmentally friendly and fully recyclable with a 20-year life span and a 10-year guarantee. Unlike traditional, metal fire extinguishers, they don’t require costly external annual servicing. Instead, simple checks can be carried out by a responsible person.

“High-risk industrial sites need fire protection that performs instantly and reliably in extreme conditions,” said Andy Spence, Managing Director of Britannia Fire. “The launch of our P50 Monnex extinguisher gives operators a specialist solution that delivers rapid knock-down on flammable liquid and gas fires, while also reducing long term maintenance and environmental impact.”

A model certified to the Marine Equipment Directive (MED) is also available, which includes the required Schrader valve for equipment used on ships, offshore platforms and marine installations.

“The MED approved P50 Monnex is ideal for offshore environments, where conditions are harsher and regulations are stricter,” added Spence. “The P50 doesn’t corrode like traditional metal extinguishers and is much more durable. It also doesn’t require annual servicing, something that’s historically been very difficult and costly in these hard-to-reach sites. The Schrader valve allows easy pressure checks and re-pressurisation.”

From fibre to fire protection: The role of Aksa Akrilik in technical textiles

Bahadir Kaya, FR Product Solutions Manager, Aksa Akrilik, shares how innovation in fiber design and solution dyeing is shaping the future of technical and protective textiles

How do Aksa’s R&D capabilities support the development of advanced technical fibers such as the Armora modacrylic brand?

At Aksa, we don’t just manufacture fibers; we engineer solutions that protect lives.

The development of our Armora modacrylic brand isn’t a coincidence, it’s the result of a sophisticated R&D ecosystem designed to push the boundaries of inherent flame retardancy.

Our journey is built on 55 years of deep-rooted fiber production experience, which provides the stable foundation required to advance polymers.

We are leveraging decades of data to refine the safety and comfort of technical textiles.

Innovation requires more than just ideas; it requires the infrastructure to test them.

Our R&D commitment is reflected in our dedicated team and facilities.

We have a specialised task force, around 40 expert researchers and engineers dedicated solely to the next generation of fibers.

In addition, we operate in 4 specialised R&D laboratories that focus entirely on research, development and rigorous testing.

This allows us to move from a concept to a high-performance prototype with unmatched speed and precision.

We believe the best products aren’t made in isolation.

We work in close partnership with customers across the globe, co-developing tailored solutions that meet the specific safety demands of different regions and industries.

This market-oriented approach doesn’t just result in products; it results in intellectual property.

By consistently filing patent applications for our innovative projects, we don’t just follow market trends; we set them.

When you choose Armora, you choose a product born from a culture of leadership and a continuous drive for “what’s next” in technical safety.

What differentiates Armora from conventional modacrylic fibers?

Armora’s distinction from conventional modacrylic fibers lies in its fusion of molecular-level safety with groundbreaking manufacturing efficiency, moving far beyond basic flame retardancy to offer a high-performance, sustainable textile solution.

At the heart of this innovation is our advanced solution dyeing technology, which integrates pigments directly into the fiber during production to ensure superior colour fastness that remains vibrant even after 100 industrial washes.

This “dop dyed” approach is not only a performance advantage but a significant environmental milestone, reducing water consumption by 70% and steam usage by 15% compared to traditional batch dyeing methods.

Our portfolio continues to lead with specialised innovations such as New Generation Modacrylic Fibers, which provides a cost-effective modacrylic solution through optimised low-antimony content and our upcoming New FR fiber.

This new advancement is specifically engineered for next-to-skin applications, offering a toxic-gas-free, antimony-free and skin-friendly profile that prioritises wearer comfort without compromising on safety.

Because Armora is inherently flame-resistant at a molecular level, it acts as a critical safety anchor in blends, allowing it to provide full FR performance even when combined with non-FR cellulosic fibers.

This versatility is backed by the Oeko-Tex Class 1 certification across the entire Armora range, ensuring that our products meet the highest global standards for human ecology.

Armora HiVis dyed fiber options strictly adhere to ISO 20471 and ANSI 107 standards, serving the growing high-visibility market with a solution that is as durable as it is protective, proving that true innovation in technical fibers must balance high-stakes safety with a steadfast dedication to environmental stewardship.

How is Armora currently being applied in protective clothing and technical textile markets, and what makes these applications distinctive?

Armora’s strategic deployment across global protective clothing and technical textile markets is defined by its ability to provide uncompromised safety where the margin for error is zero.

As our most advanced modacrylic fiber, it serves industrial professionals who require exceptional resistance against flash fires and harsh chemicals without sacrificing ergonomic comfort.

The distinctiveness of Armora lies in its molecular versatility; its self-extinguishing structure allows for innovative fabric blends – even with non-FR fibers – maintaining total thermal integrity while offering a clear cost advantage through optimised longevity.

In the petrochemical and oil and gas sectors, our solution dyed technology ensures garments retain protective properties and high-visibility colors through years of rigorous daily wear.

Armora is also a preferred choice for power distribution companies due to its electric arc flash protection and processing for both knitting and weaving.

Beyond heavy industry, its unique performance profile extends into high-end plush blankets, footwear and the nonwoven sector as a high-efficiency heat barrier, demonstrating a steadfast dedication to safeguarding life in every environment.

How does Armora’s technical properties translate into improved protection or performance for end users?

The shifting dynamics in the oil and gas sector provide a clear example of how Armora’s technical properties translate into tangible benefits.

While aramid-heavy blends have dominated this field, Armora modacrylic blends are redefining the standard by offering a 20–30% cost advantage without compromising safety.

This shift is driven by Armora’s ability to be blended with cellulosic fibers, providing a superior comfort solution for personnel working long shifts in demanding environments.

Despite this increased focus on comfort and cost efficiency, the level of protection remains uncompromised, offering excellent flame retardancy alongside exceptional color fastness.

Even under harsh industrial conditions involving intense UV exposure, our solution dyed fibers ensure that garments retain their original appearance and high-visibility performance throughout their entire service life.

By balancing these rigorous safety requirements with a persistent focus on user-centric design, Armora delivers a more wearable, affordable and durable protective solution for today’s industrial workforce.

What excites you about how Armora is being used in protective clothing today?

The most rewarding aspect is our ability to transform high-stakes safety into a seamless part of a professional’s daily life.

In critical sectors, workers face the constant life-threatening risk of arc flash incidents.

Historically, protection often came at the expense of wearer comfort, but Armora is changing that by positioning itself at the forefront of innovative arc protection.

It is rewarding to see how our unique solution dyed technology integrates high-level arc flash defense directly into the fiber’s DNA, ensuring that safety is never compromised by wear or washing.

By enhancing the comfort profile, we are not just providing a shield against thermal hazards; we are offering an unwavering commitment to improving the quality of life for those working in high-risk environments, making their demanding shifts safer and more manageable.

What new applications or developments for Armora do you see shaping the future of technical textiles?

The future will be defined by the seamless integration of high-performance safety and environmental responsibility.

We are intensifying our efforts to deliver sustainable innovations, most notably through our New Generation Armora products.

By reducing antimony content, traditionally used as a synergistic additive, we have received exceptional feedback from the market.

This advancement allows us to offer a higher Limiting Oxygen Index while providing an eco-friendlier fiber.

We are also expanding our portfolio with the introduction of New FR, an acrylic-based fiber currently undergoing successful client trials.

This delivers a comprehensive package of benefits, including enhanced sustainability, odor control, antimicrobial properties and superior moisture management, all while leveraging our solution dyed technology.

When compared to Meta-Aramid or FR viscose blends, it demonstrates superior thermal insulation and higher water vapor resistance.

These make it an unrivaled choice for next-to-skin applications, where the demand for a superior comfort solution is as critical as the need for thermal defense.

By combining these diverse functionalities into a single fiber, we continue to demonstrate a strong adherence in shaping a safer and more sustainable future for the industry.

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

Desu Systems to showcase industrial safety portfolio at INTERSCHUTZ 2026

Desu Systems confirms attendance at INTERSCHUTZ 2026

Desu Systems will attend the INTERSCHUTZ 2026 exhibition in Hannover from 1 to 6 June to present its broad portfolio of safety technologies.

The company announced it will be located at Hall 12, Stand D07, with a full team presence representing its various technical divisions.

Exhibits will focus on methane emission monitoring, flame and gas detection, and kitchen fire protection.

This presence at the exhibition reflects a growing demand for performance-led safety systems that respond to tighter regulatory expectations and operational risks.

Operators in petrochemical processing, hydrogen production, wind energy and waste handling face increasing pressure to improve safety performance.

Desu Systems also identifies aircraft hangars, tank storage, offshore infrastructure and commercial kitchens as sectors requiring updated technical and compliance solutions.

Emile Hippe, Managing Director of Desu Systems said: “Across industry, the conversation around safety is becoming more urgent and more practical at the same time.

“Companies are under pressure to improve detection performance, strengthen resilience, and respond to changing regulatory demands.

“Our role is to help them find technologies that are not only advanced, but also relevant to the realities they face in the field.”

Technical solutions for hazardous and industrial environments

Featured technologies at the stand will include optical gas imaging systems used for methane leak detection, quantification and monitoring.

The company will showcase the Spectrex 20/20Q flame detector alongside detection technologies based on QuadSense innovation.

These systems are designed to support faster response and reliability in demanding industrial conditions.

The exhibitor listing also includes the Sensia thermal imaging camera and the Buckeye Kitchen Mister suppression system.

Ronald Verkroost, Founder and CEO of Desu Systems said: “Industrial safety decisions carry greater consequences than ever when systems fall short.

“That is why detection and suppression technologies need to be chosen with a clear view of the risk, the environment, and the operational reality.

“At INTERSCHUTZ, we want to show solutions that answer those demands in a serious and practical way.”

Verkroost and Hippe will be available for press interviews throughout the duration of the event.

LEADER GROUP expands global firefighting equipment and industrial operations

Firefighting scale and international footprint

LEADER GROUP has expanded its international operations, with more than 250 employees, activity across Europe, North America and Asia, and a network of over 500 distributors worldwide.

The company reports that this growth has taken place over the past decade as it moved from a European SME into a structured international industrial group.

Its current structure brings together multiple entities and technologies to cover a wide range of firefighting and rescue operations.

Firefighting equipment and manufacturing shift

LEADER GROUP states that it has transitioned from product distribution into design and manufacturing, with a focus on delivering integrated equipment for operational use.

Its portfolio includes ventilation systems used to clear smoke-filled environments and thermal imaging cameras used to locate unconscious victims.

The range also includes extinguishing and pumping solutions used to support fire control during incidents.

INTERSCHUTZ 2026 presence

LEADER GROUP will present its full range of technologies at INTERSCHUTZ 2026 within a single exhibition space.

The event will mark its first appearance as a unified international group, with its firefighting equipment and systems displayed together.

Designing for SFFF: The proportioning challenge with Firemiks

Per Aredal of Firemiks AB explores proportioning challenges in transitioning to fluorine-free firefighting foams

The phase-out of fluorinated foams and the move towards synthetic fluorine-free firefighting concentrates (SFFF) is one of the most significant material shifts the fire protection industry has navigated in decades.

For those specifying or operating fixed suppression systems, the change raises an important and often underestimated question – not just which concentrate to use, but whether the proportioning system in place can handle what comes next.

Per Aredal, International Sales Director at Firemiks AB, makes the case that getting the proportioning system right is where future-proofing the installation begins.

Water driven volumetric proportioning

At its core, a water driven volumetric pump proportioner is ingeniously self-regulating.

The system relies on positive displacement for both its water motor and concentrate pump.

The water motor – driven entirely by the flow of extinguishing water – powers the concentrate pump, which injects the correct amount of firefighting concentrate into the water stream.

The dosing ratio is determined by the volumetric relationship between the two components, requiring no electricity, engines or power take-off (PTO) units.

This autonomy has direct operational consequences.

Start-up and commissioning are straightforward, and the system is less susceptible to the failure modes that come with dependence on external power or fuel.

Installation can be decentralised (placed close to the hazard) which can meaningfully reduce response times in demanding environments.

Four decades of refinement

The FIREMIKS system is rooted in the volumetric water motor design first developed in the late 1970s by the grandfather of the company’s current management.

What began as an innovative mechanical concept has been continuously refined over more than four decades, yielding a wide operating range across both flow and pressure.

The self-regulating nature of the system is one of its defining characteristics.

It accurately tracks flow changes and oscillations in real time, remaining largely unaffected by pressure variations across its operating range.

A single unit can cover varying fire area sizes or service multiple simultaneous fires and does so without requiring recalibration when conditions or concentrates change.

The concentrate storage arrangement adds further flexibility.

An atmospheric tank configuration makes it easy to inspect concentrate levels, take samples, and replenish or swap tanks even during active firefighting operations.

Fixed and mobile tanks – including IBC containers or tank trailers – can be combined for uninterrupted operation.

For installations requiring periodic performance verification, the optional Dosing/Return Valve (DRV) with dual flow meters allows accurate testing without releasing any concentrate to the environment, reducing both cost and disposal concerns.

Certified for variable viscosity

Perhaps the most significant aspect of the FIREMIKS range is its FM approval classification as a “Variable Viscosity Pump Proportioner.” Under FM Standard 5130 (May 2021), eighteen 3% models across seven flow sizes – 450, 800, 1800, 2400, 4000, 6000 and 8000 lpm – have been certified to maintain accurate dosing across a very wide viscosity range: from 1 cP up to 7,288 cP at a shear rate of 5 1/s.

This is particularly relevant as the industry transitions to SFFF concentrates, many of which are non-Newtonian and exhibit higher viscosity than their AFFF predecessors.

Unlike bladder tank systems, which are typically designed around a narrow viscosity window and require recalibration if the concentrate or its properties change, a FIREMIKS unit does not need recalibration when a different concentrate is introduced, provided its viscosity falls within the certified envelope.

The shear rate curves approved for our different FM-approved models are as follows:

Shear rate 1/sViscosity (cP)
450 & 800 lpm1800, 2400 & 4000 lpm6000 & 8000 lpm
5393464227288
10214135453942
20115719452110
50529882959
100302497533
60080128132

If a concentrate’s shear rate curve falls at or below the figures for a given unit size, it will perform within approved dosing tolerances, including the latest generation of fluorine-free concentrates.

For installations requiring flows above 8,000 lpm, two units can be configured in parallel, either on a base skid or in a “double-decker” arrangement, to reach 12,000 or 16,000 lpm.

Why proportioning system choice matters

The shift to SFFF is not a simple one-for-one swap.

It involves regulatory compliance, environmental assessment, logistics and equipment compatibility – each link in a long chain.

Firemiks focuses specifically on one critical link: ensuring that the proportioner can deliver the correct dosing rate regardless of viscosity, within approved limits.

The practical implications are straightforward.

A variable viscosity system means no need to replace or recalibrate the proportioner when switching concentrate suppliers or brands.

It means minimal downtime if a change becomes necessary for operational, commercial or regulatory reasons.

And it means reliable performance even as concentrate viscosity shifts due to ageing, temperature fluctuations or batch variation – provided the concentrate remains within the approved viscosity envelope.

For specifiers and end users planning installations that may span several decades, this is not a trivial consideration.

The concentrate landscape is still evolving, and future-proofing an installation against that uncertainty is a sound engineering decision.

Matching the pump to the application

One further differentiator in the FIREMIKS range is the availability of two concentrate pump types – piston and gear – each suited to distinct application profiles and viscosity characteristics.

Piston pump models use a reciprocating mechanism in which the plunger draws in and then expels concentrate in each revolution, taking the fluid from zero to maximum shear rate twice per cycle.

For low-viscosity or mildly non-Newtonian concentrates this works well, and the piston configuration performs particularly effectively in applications with low start-up flows relative to maximum flow, such as sprinkler systems.

The wide operating range makes it a versatile choice across many installation types.

Gear pump models take a different approach.

Counter-rotating gears generate a smooth, consistent flow without agitation, which makes them well-suited to handling very high-viscosity fluids -particularly those that exceed the shear rate envelope verified by FM approval for the piston pump models.

This characteristic makes gear pumps the preferred option for deluge systems, large fire monitor installations, and any application operating at the higher end of the maximum flow range.

When advising clients, Firemiks prioritises understanding the concentrate type and viscosity alongside flow and pressure requirements before recommending a pump type – ensuring that the specified system performs reliably across its full operating life.

Per Aredal is International Sales Director at Firemiks AB, with more than 35 years of experience in the design, production and global delivery of water driven volumetric pump proportioners. He can be reached at per.aredal@firemiks.com, +46 76 139 70 34, or via www.firemiks.com.

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

Fixed gas and flame detection hub launched by MSA Safety

MSA Safety launches FGFD information page

MSA Safety (MSA) has launched a new Fixed Gas & Flame Detection (FGFD) Solutions webpage as a dedicated online resource for detection systems.

The page is intended to support safety management in oil & gas facilities, chemical plants and new energy sites, bringing together expert insights, technology overviews and service offerings in one place.

It is presented as a resource to help users improve reliability and make more informed decisions about gas and flame detection systems.

Detection systems and named experts

The page includes contributions from Darin Brame, Global Sales Director, Fixed Gas & Flame Detection, Scott Wilkie, Business Director EMEA & APAC, Fixed Gas & Flame Detection, Merin Joseph, Proposal Engineer – Projects, Fixed Gas & Flame Detection, Chandan Das, Business Development Manager, International, New Energies, Edwin Choo, Functional Safety Engineer, Fixed Gas & Flame Detection and George Zhang, Sales Director, China, Fixed Gas & Flame Detection.

MSA has also introduced the TG5000 Gas Monitoring System, described as a general-purpose, self-contained solution designed to detect a range of gases using XCell sensor technology.

The TG5000 is presented as requiring minimal installation and offering flexible configuration options for wastewater treatment facilities, commercial and public buildings and light industrial environments.

MSA fixed detection portfolio and tools

In other news, the company has updated its online Total Cost of Ownership calculator for point gas detection, allowing comparison of ULTIMA X5000 and General Monitors S5000 detectors against other manufacturers.

The calculator is described as providing indicative figures based on market knowledge and includes adjustable inputs such as installation, replacement sensors and calibration gas.

MSA has also published a whitepaper on XCell sensor technology for fixed gas detection, outlining applications and performance in industrial environments.

A recorded panel discussion on hydrogen storage in salt caverns hosted by Mission Hydrogen is now available, featuring Jack Samways, Business Development Manager – New Energies, Europe at MSA Safety.

Finally, MSA has released an updated version of the X/S Connect app, supporting connectivity for ULTIMA X5000, General Monitors S5000 and TG5000 gas monitors through a mobile interface.

Attabotics launches fire safety bin for warehouse automation systems

Fire safety features in new Attabiotics bin design

Attabotics has announced the launch of the Guardian bin, a formed metal bin designed to help mitigate fire risks in automated storage and retrieval systems (ASRS).

The Calgary-based company announced the product on 17 March 2026 and said the bin replaces combustible plastics with inert galvanised steel.

The bin is designed to contain leaked liquid to limit spills and to support the distribution of fire suppression fluid through high-density racking.

When fire suppression systems are activated, the bin collects water and allows it to pool briefly before overflowing downward to adjacent storage locations.

Attabotics said the metal construction provides predictable behaviour and maintains structural integrity at elevated temperatures, supporting wider system-level fire safety strategies.

The company also said it is working with commercial insurance providers toward fire safety certification of the bin for use in ASRS environments.

Mark Dickinson, Senior Vice President and General Manager, Attabotics, said: “Firefighters respond to nearly four warehouse fires each day in the U.S.

“On an annual basis, that adds up to more than 1,500 fires and over $300 million in direct property damage.

“For supply chains running on tight timelines and low margins, those statistics represent a critical threat.

“Our goal with the Guardian bin is to support our customers’ strategies to operate safely and efficiently.”

Product details and trade show plans

Attabotics said the bin includes a purpose-built plastic base that maintains low noise levels on high-speed conveyor systems and interfaces with robotic handling equipment to help prevent damage and support service life.

The flat-pack design enables shipments of up to 2,800 bins in a single container, which the company said is nearly 10 times the amount possible with conventional bin designs.

The company said the metal construction also supports cleaning after spills involving beverages, industrial fluids, personal care products or other liquids.

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.

FireDrone targets 200°C missions for firefighters and high-temperature industry sites

FireDrone built for live data capture in high-risk heat and smoke

The Federal Laboratory for Materials Testing and Research has announced a new generation of FireDrone for firefighting and high-temperature industrial inspections.

The drone is presented as a way to provide real-time information from areas considered too dangerous for people and conventional drones.

The press release from the Laboratory says the technology was developed at Empa and is now being further developed by an Empa and EPFL spin-off.

Fabian Wiesemüller, Empa researcher and co-founder of the FireDrone start-up, said: “Today, firefighters have to physically enter burning buildings to locate hazardous materials or missing persons.

“With the FireDrone, we can now send a drone into hazardous areas to do just that – significantly minimizing the risk during operations.”

The release frames the drone’s intended use around large and complex structures such as industrial halls, parking garages and tunnels.

David Häusermann, Empa researcher and co-founder of the FireDrone start-up, said: “A drone that can fly over such areas quickly and without damage offers clear added value.”

FireDrone insulation, sensors and indoor operation

The organisation set out FireDrone’s heat resistance, insulation approach and payload options.

Conventional drones are described as reaching their limits at around 40 degrees Celsius when frames deform and electronics fail.

FireDrone is stated as being able to fly at temperatures of up to 200 degrees Celsius.

The insulation is described as a patented, ultra-light aerogel with air-filled pores enclosed in heat-resistant plastic.

The release states that earlier insulation relied on a glass fiber-reinforced composite structure made of polyimide and silica, and that the new version uses a pure polyimide aerogel.

Häusermann said: “We can cast the aerogel in three-dimensional shapes and tailor it to the drone.”

The release states that the drone includes an internal temperature management system designed to cool and monitor the electronics continuously.

An infrared camera is described as transmitting high-resolution thermal images in real time to a large screen on the remote control.

Häusermann said: “Today, often only the first firefighters inside the building can see what it looks like inside.

“With the drone, the incident commander can get an overview of the situation before anyone enters the building.”

Optional payloads mentioned include additional cameras and sensors, including tools to measure outside temperatures and detect gases produced by fires.

Indoor flight is described as a core requirement, with development work focused on pilot assistance and localisation systems for environments where satellite navigation is unavailable.

Wiesemüller said: “GPS is not available in many of our operational scenarios.

“That’s why we are developing pilot assistance and localization systems that function reliably even without a satellite signal.”

Testing, funding support and FireDrone Nest plans

The organisation outlined testing activity and the spin-off’s next development steps.

FireDrone is described as the result of several years of research in Empa’s Sustainability Robotics and Building Energy Materials and Components laboratories.

The spin-off is described as having tested the drone at the training ground of the Andelfingen training center and at the Holcim cement plant in Siggenthal.

Häusermann said: “Tests are crucial for making the transition from the laboratory to practical application.

“In future, pilots should be able to use these drones safely in extreme situations with minimal training.”

Support named in the release includes Venture Kick, the Gebert Rüf Foundation and the Innovation Booster Robotics.

A related project described is FireDrone Nest, a mobile, thermally insulated docking and maintenance station intended to enable automatic landing after a mission, secure the drone and prepare it for the next flight.

Wiesemüller said: “The transition from research project to practical application would not have been possible without Empa’s years of support.

“Now it’s a matter of putting the technology to use in real-world applications.”

The release also references a longer-term aim for a mobile docking and maintenance station that can be integrated into fire trucks or modern fire protection systems.