Maritime lithium-ion battery fire detection starts with heat

AP Sensing explains how fibre optic Linear Heat Detection enables earlier lithium-ion battery fire detection on ships through continuous thermal monitoring

On the open ocean, where a ship’s hull is its entire world, fire is one of the few threats that can escalate faster than a crew can respond. Today, that threat is increasingly linked to lithium ion batteries.

Once specialty cargo, they now move through global supply chains in huge volumes, powering electric vehicles, e-bikes, tools, laptops and portable electronics. The maritime industry understands how lithium ion batteries behave under failure conditions.

The chemistry is well studied and the progression from defect to thermal runaway is familiar. What remains difficult is spotting developing thermal events early enough to act. Conventional systems often react only once smoke or fire is visible.

At sea, earlier automatic detection and precise situational awareness can make a critical difference.

How lithium-ion battery fires begin at sea

A lithium ion battery failure usually begins quietly. A defect, manufacturing flaw or Lithium-Ion Battery Fires “The maritime industry understands how lithium ion batteries behave under failure conditions.” impact can cause a small, localised rise in temperature. Inside a battery pack or sealed container, that heat can build slowly and invisibly.

On ships, where containers are tightly stacked and airflow is limited, early detection is difficult. Monitoring still often relies on inspections and fire watches, but thermal events can develop between checks, especially where visibility is restricted.

This is why maritime fire safety is shifting from reacting to visible fire toward continuous, automated awareness of developing thermal conditions.

How fibre optic Linear Heat Detection works

Fibre optic Linear Heat Detection addresses this challenge by continuously monitoring temperature along the protected area.

AP Sensing uses a passive fibre optic sensor cable routed through the ship or cargo zone, creating a continuous sensing line rather than isolated detection points. Wherever the cable runs, temperature is measured.

The system provides thousands of temperature readings along the cable, creating a real time thermal map that updates every few seconds. If thresholds or abnormal thermal developments are detected, it automatically alarms on the bridge, helping crews assess and respond earlier.

How fibre optic sensing detects heat before fire

At the centre of the system is a controller that sends short laser pulses into an optical fibre. As light travels through the fibre, a tiny portion scatters back from every point along the sensor cable.

Part of these backscattered light changes with temperature, while another part remains stable. By comparing the two, the system calculates temperature at every point along the cable. It also measures how long the light takes to return, allowing localised temperature changes to be precisely located.

This creates a complete, real-time temperature profile across the monitored area, not just a reading at one hotspot. Operators can see where heat is developing, how temperatures change and whether a thermal event is spreading.

For lithium-ion battery cargo, where conditions can escalate rapidly, continuous awareness is critical.

Maritime lithium-ion battery fire detection proven at sea

Technology is already proven in demanding environments.

Fibre optic Linear Heat Detection has long been used as a certified special detector within fire alarm systems. Before lithium-ion batteries became a growing maritime concern, it was deployed across road and rail tunnels, parking garages, large photovoltaic installations and storage facilities.

In these settings, reliability is essential. Detection systems must perform despite contamination, electromagnetic interference, vibration, weather and other harsh influences.

Fibre optic LHD has demonstrated this resilience while helping operators maintain safety and avoid unnecessary interruptions. This history is important because the technology is not new to challenging conditions.

At sea, however, airflow, motion and operational constraints create a distinct detection challenge. To explore this, AP Sensing’s system was evaluated alongside conventional and alternative detection technologies in a major European and insurance research initiative focused on fire safety on RoRo (Roll on, roll off) and container vessels. Testing included laboratory work and long-term onboard trials under real operating conditions.

The findings contributed to the inclusion of fibre optic Linear Heat Detection in the maritime SOLAS Fire Safety Systems (FFS) Code in early 2026, reflecting growing recognition of continuous thermal monitoring in maritime fire protection.

AP Sensing’s solution is also DNV-approved for safety-critical ship environments. The results highlighted the limits of traditional smoke detection on ships. In controlled settings, smoke detectors performed well. At sea, airflow, humidity, salt aerosols and engine related particles could delay detection or increase nuisance alarms.

Fibre optic Linear Heat Detection was unaffected by these challenges. Because it measures temperature directly along the cable, it remained reliable regardless of airflow or airborne contaminants.

The trials also showed that the system can reveal how a thermal event develops. It pinpointed the heat source and helped operators track spread and direction, giving crews precise, real-time information instead of a general alarm.

Why fibre optic heat detection suits maritime fire safety

Beyond detection performance, fibre optic Linear Heat Detectors fit maritime operations. The sensing cable is passive and needs no electrical power along its length, simplifying installation and removing potential ignition sources.

The system also remains active during loading and unloading, when cargo handling introduces added risk.

How early heat detection improves maritime fire response

Detecting heat early is only part of the equation. What matters is how quickly and effectively that information becomes action. In a maritime environment, where response time is critical and access can be limited, crews need to know where something is happening and how it is evolving.

Fibre optic sensing provides this insight in real time. Temperature data is processed in the measuring unit and visualised through a graphical user interface (GUI), giving operators a continuous view of conditions across the vessel.

Alarm strategies can be configured around absolute temperatures or temperature gradients, enabling early warnings of abnormal developments before a localised issue escalates.

Lithium-ion battery fire detection beyond maritime transport

With lithium-ion batteries, the challenge does not begin or end at sea. A battery’s journey spans storage, transport, use and recycling. Across these stages, the pattern remains the same: heat develops before fire.

Fibre optic Linear Heat Detection applies this principle consistently. A continuous sensing cable enables early detection and precise localisation, supporting a unified approach to fire safety beyond maritime transport.

This is especially relevant in battery storage facilities, where large volumes of cells are concentrated in confined spaces and in recycling operations, where damaged or unstable batteries add risk during handling and processing.

Across these environments, the value is consistent: early insight enables faster, better-informed decisions and safer operations.

Meet AP Sensing at SMM Hamburg

At SMM maritime exhibition in Hamburg, September 1-4, discussions around lithium-ion battery safety and early fire detection will continue across the industry.

AP Sensing’s fire detection expert, Felix Heck, will be on site to present how fibre optic Linear Heat Detection and Distributed Fibre Optic Sensing are applied in real maritime environments. He will share how continuous thermal monitoring supports earlier detection and more informed response strategies.

AP Sensing: above-ground conveyor belt monitoring

AP Sensing is monitoring conveyor belts at the largest salt production site in Germany. The Zielitz Plant extracts approximately 12 million tons of crude salts per year and the mine operator, K+S, is an international mining company with sites across five continents.

K+S pursued an AP Sensing fire detection solution for early detection on conveyor belt bridges. Such bridges typically have a wooden floor, which would burn quickly. AP Sensing’s Linear Heat Detection (LHD) protects these conveyor belt bridges, and due to the project’s success and AP Sensing’s scope of certifications, K+S and AP Sensing entered a firm partnership to equip further sites.

In total, 22 conveyor belts are monitored with 11 LHD devices spread across the entire site. The operator, K+S, conducted trials and a benchmark comparison at the beginning of the project, additionally testing thermo cameras and point sensors. But due to the salty air in the conveyor belt bridges, the other sensor types were unsatisfactory as the corrosion of components is high, visibility low, and the maintenance effort higher.

AP Sensing’s simple approach, combining our sensor cable along the conveyor and LHD units in different control rooms, is the best solution for this type of application and its tough environmental conditions.

Conveyor Belt Monitoring

The conveyor belts are used to transport the salt from the ground to the storage halls, mills, other production facilities and load out ramps. After an incident at another site where one conveyor belt bridge burned, K+S sought out a fire detection system. These conveyor belts are important to monitor as none of them are redundant.

Installation

Following a successful pilot installation, K+S installed 11 fibre optic LHD units. All units have two channels and work in a fully redundant setup. AP Sensing’s Sensor Cable Steel is installed along both sides of each conveyor to achieve maximum coverage and the fastest possible detection. The cable has been fixed with high temperature cable ties along a tension wire.

Fire Coverage

To guarantee quality and reliability in the harsh conditions of the mine, a robust and maintenance free fire detection system is necessary. This solution consists of over 10 km of cable distributed throughout the site, providing area coverage for the conveyors, three reclaim tunnels, the handling and preparation plant, and the train load out conveyor and bin.

Precision of detection is unaffected by wind, dust and harsh environmental effects. All LHD units transmit alarms via relay contacts to different alarm panels on site in order to inform the plant fire brigade immediately. Additionally, AP Sensing’s SmartVision™ asset visualisation software is in use to demonstrate the exact location of temperature events along the conveyors.

The project was successful and K+S used AP Sensing’s LHD solution for other K+S sites. AP Sensing’s DTS technology is ideal for the extreme environmental conditions often found in mines. It is fully certified, resilient and maintenance-free, withstanding extreme temperatures without losing monitoring capabilities. Fibre optic LHD provides a simple and cost-effective solution for minimising serious damage, protecting employees and reducing operational shutdowns.

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