Hydrogen detection deal adds new technology to Consilium portfolio

Consilium expands hydrogen detection portfolio

Consilium Safety Group has acquired all assets and intellectual property related to Insplorion AB’s hydrogen sensor technology business following approval at an extraordinary general meeting held on April 13.

Consilium announced the acquisition as part of its gas safety work for marine, critical infrastructure and energy-related applications.

The transaction includes Insplorion’s hydrogen sensor NPS-P2 and an ongoing certification process linked to the product.

The company said the acquisition adds hydrogen detection technology and related expertise to its existing safety portfolio.

Consilium deal includes NPS-P2 and certification process

The acquisition includes the NPS-P2 hydrogen sensor, which is described as having documented performance in demanding environments.

It also includes an ongoing certification process intended to open access to the marine sector and regulated industrial environments globally.

Consilium said it is positioned to take over that process and move the product towards full-scale commercialisation through its distribution network and brand presence in the safety sector.

Philip Isell Lind af Hageby, President and CEO, Consilium Safety Group, said: “For us, this is a strategic investment in the safety of tomorrow.

“With a sophisticated sensor technology and a capable team, that we are delighted to partner up with, we are now stepping straight to the forefront of hydrogen detection and strengthening our position as an industry pioneer,”

The acquisition was conditional on approval from an extraordinary general meeting of Insplorion AB, which was obtained on April 13.

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.

New Zelim base in Canada supports maritime market growth

Zelim expands in Atlantic Canada

Zelim has opened new premises in Dartmouth, Nova Scotia, with the site set to serve as its Atlantic Canada base from April 2026.

Zelim announced that the office will be located at the COVE ocean facility, which it described as a technology hub for maritime innovation.

The company said the site will support ongoing partnerships and future opportunities in the region for its AI-enabled technologies designed for safety and security operations at sea.

The move follows activity in the Canadian cruise, ferry and defence sectors.

In 2024, Zelim demonstrated its man-overboard detection and monitoring system, ZOE, to the Canadian Coast Guard and other maritime partners.

In 2025, the company was selected for the NATO DIANA Phase II programme, through which ZOE was used in a NATO naval exercise and introduced to the Royal Canadian Navy.

Zelim also secured a commercial contract with BC Ferries in February 2026 to equip four new-build ferries with its ZOE technology.

Leadership and regional plans

Zelim said the Canada office will be led by its newly appointed regional Vice President, Brigadier General (Retired) Tom Dunne.

Dunne has served as a search and rescue leader with the Royal Canadian Air Force and the United States Coast Guard.

Sam Mayall, Zelim’s Founder and CEO, said: “Given the scale and complexity of its maritime domain and the operational challenges associated with remote and harsh environments, Canada is a strategically important market for Zelim’s maritime detection and automated alerting capabilities.

“With a number of partnerships and agreements already in place in North America, and significant potential for future development, establishing this office base and bringing Tom on board were the next logical steps in our growth journey, with a view to a long-term presence and economic contribution in the region.”

Melanie Nadeau, CEO of COVE, said: “Zelim’s expansion into Canada is an important step for the maritime industry.

“Since first connecting with COVE in 2024 through Innovate UK’s Ocean ScaleUp Accelerator, Zelim has demonstrated the innovation and expertise that strengthen the sector.

“Its Canadian presence will enable new partnerships, foster collaboration, and deliver maritime detection and automated alerting solutions, with COVE supporting access to an ecosystem designed for growth and opportunity.”

Zelim said the new office follows the launch of a defence business unit and additions to its senior leadership team as it continues its international expansion.

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.

Upcoming webinar: From data to decision in the fight against wildfires

Electric utilities across North America are facing a growing crisis as wildfire seasons become longer, more destructive and increasingly unpredictable. In response, industry leaders are shifting their strategy from reacting to fires to preventing them.

A new webinar, From Data to Decision: Powering the Future of Wildfire Prevention for Utility Networks, will explore how this transformation is taking shape on April 28.

REGISTER HERE

The upcoming session, hosted by IFSJ sister publication FSJA, will bring together experts and utility professionals to examine how data is being harnessed to reduce wildfire risk and protect critical infrastructure.

At the heart of this shift is a move beyond simple data collection toward actionable intelligence, insights that can guide decisions across operations, risk management and long-term infrastructure planning.

Modern situational awareness platforms and predictive analytics are playing a central role. Utilities are now integrating a wide range of data sources, including localised climate patterns, real-time weather observations, vegetation health and encroachment monitoring, asset condition reports, historical outage trends and wildfire progression models.

These inputs are enabling a more comprehensive understanding of risk across utility networks.

Emerging technologies are also expanding the toolkit available to utilities. Artificial intelligence-powered smoke detection systems, for example, are helping identify potential ignitions earlier than ever before, giving operators valuable time to respond before incidents escalate.

The webinar will highlight how advances in vegetation intelligence, machine learning applied to localised climate extremes, and infrastructure risk scoring are allowing utilities to prioritise mitigation efforts more effectively.

By focusing resources where they are needed most, companies can strengthen resilience while improving public safety outcomes.

Wildfire experts to speak

Among the featured speakers is Chris Waters, a retired Operational Division Chief from CAL FIRE with 25 years of experience in wildfire management. Waters, now Principal of Fireshed Forestry Solutions, brings deep expertise in fire behavior modeling, predictive analytics, and risk assessment, informed by his work on major incidents including the 2021 Dixie Fire.

Joining him is Chuck Parker, Vice President of Sales – Americas at Indji Systems, Inc., and Director of Business Development for the utility industry. With more than two decades of experience, Parker has contributed extensively to industry knowledge through expert papers and conference presentations focused on lightning science, natural hazards, and data-driven solutions for utilities.

As wildfire risk continues to redefine operational priorities, the webinar aims to provide attendees with practical insights into how leading utilities are leveraging data to move from awareness to action. The session underscores a broader industry trend: prevention, powered by intelligence, is becoming the new frontline in wildfire management.

Sign up for the webinar here: https://attendee.gotowebinar.com/register/666672836818352474

The future of wildfire technology

The world is making significant investments to rise to the challenge of managing and responding to deadly wildfires. Not only has the US federal government expanded budgets to prevent and defend against wildfires, but it is also evaluating the organisation of its federal wildfire agencies.

Likewise, state and local governments and utility companies are increasing their investments in wildfire prevention, mitigation and suppression.

IDGA’s Wildfire Technology Summit, taking place on April 21-22, 2026, at the Kona Kai Hotel in San Diego, CA, convenes senior decision-makers from across the wildfire ecosystem to tackle real-world challenges, accelerate modernisation efforts and shape the next phase of wildfire resilience, prevention, and suppression.

IDGA’s Wildfire Technology Summit agenda

Here’s a sneak peek at what you’ll find in the agenda:

✔️ Timely and high-priority sessions, such as the role of the brand-new U.S. Wildland Fire Service, advancing wildfire capabilities, AI and its role in wildfire intelligence, management strategies, and more!

✔️ Recently confirmed speakers, including Dirk Giles and Jessica Haas from the U.S. Forest Service, Sean Triplett and Mike Falkowski from Earth Fire Alliance and Brian D’Agostino from San Diego Gas and Electric, alongside many new additions

✔️ Networking opportunities with more than 300 senior wildfire experts, all focused on exploring solutions for the prediction, prevention, detection, suppression, and mitigation of destructive wildland fires

Download the agenda to find out more.

Heritage fire safety upgrades continue across priority sites in Japan

Fire safety programme continues at heritage sites

Japan is continuing fire protection upgrades at priority heritage sites after the 2019 blaze that destroyed major structures at Shuri Castle in Okinawa.

The South China Morning Post reported that work has not yet begun at around 30 per cent of the 107 cultural properties placed under a national programme launched in 2020 by the Agency for Cultural Affairs.

So far, 64 designated sites have installed new fire protection measures.

A further seven locations are undergoing upgrades.

The programme was introduced after the October 2019 fire at the UNESCO World Heritage site in Naha, which burned for nearly 12 hours and destroyed six buildings covering about 4,200 square metres.

Investigators later found that the fire began at an electrical distribution board.

Authorities ruled out arson.

According to Hiroko Moriyama of the Agency for Cultural Affairs, the programme adds measures beyond those required under Japan’s Fire Service Act.

World Heritage sites and national treasures are being equipped with flame detectors, specialised fire hydrants and upgraded alarm systems alongside conventional extinguishers.

Moriyama said: “This will help safeguard irreplaceable cultural assets that would otherwise be lost forever if they were damaged by fire.”

Funding, delays and the revised timetable

The South China Morning Post also reported that the Japanese government will cover up to 85 per cent of the cost of the new fire protection systems.

Nearly 13 billion yen, equivalent to around US$82.3 million, has already been allocated to support upgrades at temples, shrines, castles, palaces and historic residences.

Matsue Castle in Shimane Prefecture has installed new flame and smoke detectors as well as a replacement sprinkler system.

Zenkoji Temple in Nagano has introduced high-sensitivity smoke detectors and set up a dedicated 24-hour self-defence fire brigade for emergency response.

Officials said progress has slowed because some sites lost income during the Covid-19 pandemic, material costs rose and some stakeholders disagreed over how to install upgrades without affecting historic architecture.

Some projects have also been slowed by access issues at sites in mountainous areas.

Moriyama said: “We understand there are various individual circumstances that are the reason for the delays.”

Authorities have not identified the sites where work has yet to begin because they said publishing that information could create security risks.

With the original five-year programme nearing its end, the government has introduced a new four-year scheme that will continue support for sites still needing improved fire protection.

The revised scheme will also fund measures to improve resistance to earthquakes and flooding.

Under the updated timetable, the Agency for Cultural Affairs expects the remaining fire safety improvements at priority sites to be completed by 2035.

Work to rebuild Shuri Castle is nearing completion, with the structures around the hilltop courtyard expected to reopen to visitors in the autumn.

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.