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AI-based system successfully suppresses shipboard oil fires autonomously

Simon Osuji by Simon Osuji
November 6, 2025
in Artificial Intelligence
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AI-based system successfully suppresses shipboard oil fires autonomously
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AI-based system successfully suppresses shipboard oil fires autonomously
Fire test facility for the fire suppression system for initial response to oil fires on naval vessels. Credit: Korea Institute of Machinery and Materials (KIMM)

A next-generation fire suppression system capable of autonomously detecting oil fires aboard naval vessels and precisely targeting and extinguishing them even in maritime environments has been developed domestically for the first time.

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The system uses AI to independently determine the authenticity of a fire, activating only when an actual fire occurs. It concentrates its discharge solely on the fire source, much like a firefighter extinguishing flames.

A research team led by Senior Researcher Hyuk Lee at the AX Convergence Research Center, Virtual Engineering Platform Research Division, Korea Institute of Machinery and Materials (KIMM), under the National Research Council of Science & Technology (NST), has developed an autonomous initial suppression firefighting system specialized for shipboard oil fires and successfully completed real-ship trials on an actual vessel.

This newly developed initial suppression firefighting system for shipboard oil fires represents an advanced iteration of the research team’s autonomous firefighting technology, specifically engineered for the most common oil fires occurring on naval vessels. Its key feature is the ability to autonomously detect oil fires caused by equipment or aircraft leaks in engine rooms, hangars, decks, etc., and accurately target and extinguish the fire source even under complex environmental conditions such as sea waves and ship motion.

Existing shipboard firefighting systems release extinguishing agents throughout the entire affected area upon fire detection. This approach caused unnecessary damage during false alarms and made precise targeting difficult in maritime environments.

AI-based system successfully suppresses shipboard oil fires autonomously
Senior Researcher Dr. Hyuk Lee (right) of the KIMM inspects the fire suppression system equipment for initial response to oil fires on naval vessels. Credit: Korea Institute of Machinery and Materials (KIMM)

In contrast, the technology developed by the KIMM research team combines AI-based precision fire detection with reinforcement learning algorithms for maritime condition adaptation, dramatically overcoming these limitations.

The developed fire suppression system consists of fire detection sensors, fire monitors, and an analysis and control unit equipped with AI-based fire authenticity determination and location estimation capabilities. The system maintains a fire detection accuracy of over 98%, with a foam discharge range reaching approximately 24 meters. It has also been verified to operate stably even in sea states of 3 or higher.

The research team conducted systematic performance verification using a large-scale land-based simulation facility (25 m × 5 m × 5 m) that perfectly replicates the actual ship environment.

Within the simulation facility, which replicated the color and illumination of actual ship compartments, various oil fire conditions and non-fire situations that could be mistaken for fires (lighters, welding, electric heaters, etc.) were reproduced to perform pre-training and accuracy testing of the AI system.

Notably, successful suppression tests were completed for open-area oil fires (maximum 4.5 m2 oil tray) and shielded fires (helicopter-sized shield installed 50 cm above a 3.0 m2 oil tray) that could occur from leaks in aircraft carriers, proving the system’s capability to respond to all types of oil fires possible on actual vessels.

AI-based system successfully suppresses shipboard oil fires autonomously
Senior Researcher Dr. Hyuk Lee (left) of the KIMM developed a fire suppression system for initial response to oil fires on naval vessels. Credit: Korea Institute of Machinery and Materials (KIMM)

Subsequently, the research team conducted real-ship tests aboard the LST-II class amphibious assault ship (ROKS Ilchulbong) and successfully achieved precise targeting of extinguishing water onto a fire source 18 m away in actual sea conditions with 1 m waves.

To accomplish this, they developed and pre-trained a reinforcement learning-based algorithm that recalculates the aiming angle in real-time by reflecting wave and hull motion using only 6-degree-of-freedom acceleration data.

Senior Researcher Hyuk Lee of KIMM stated, “This newly developed initial suppression firefighting system for shipboard oil fires is the world’s first technology to complete step-by-step verification from land-based simulation facilities to actual shipboard environments.

“It can autonomously respond to the most dangerous oil fires on ships in both open and shielded conditions, marking a groundbreaking turning point for crew safety and preserving the ship’s combat effectiveness.

“This technology is applicable not only to various naval vessels but also to ammunition depots, military supply warehouses, aircraft hangars, and offshore plants. Its future expansion to civilian ships and petrochemical facilities will significantly enhance fire safety at sea and in industrial settings.”

Provided by
National Research Council of Science and Technology

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AI-based system successfully suppresses shipboard oil fires autonomously (2025, November 6)
retrieved 6 November 2025
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