Hydrogen is a promising energy carrier with wide-ranging applications, but its safe storage and handling remain critical challenges. This study investigates the conditions that lead to the accidental self- (or spontaneous) ignition of hydrogen during controlled release from a pressurized cylinder. In the experimental setup, a hydrogen cylinder pressurized to 200 bar was penetrated by a bullet to simulate an accidental release. Thermocouples were strategically placed to measure the temperature of the escaping gas, while the event was monitored with high-speed cameras and drones equipped with thermal imaging. Temperature measurements of the escaping gas showed minimal variation. However, ignition was observed a few meters from the release point, a surprising result suggesting the involvement of external factors, such as electrostatic discharge or environmental interactions, rather than direct ignition by hydrogen itself. These findings highlight the complexity of hydrogen behavior during high-pressure releases and underline the need for further research to understand and mitigate such risks.

Jankuj, V., Lepik, P., Salzano, E., Mynarz, M. (2026). Accidental self-ignition of hydrogen released from pressurized cylinder. JOURNAL OF ELECTROSTATICS, 139, 1-7 [10.1016/j.elstat.2025.104222].

Accidental self-ignition of hydrogen released from pressurized cylinder

Salzano E.;
2026

Abstract

Hydrogen is a promising energy carrier with wide-ranging applications, but its safe storage and handling remain critical challenges. This study investigates the conditions that lead to the accidental self- (or spontaneous) ignition of hydrogen during controlled release from a pressurized cylinder. In the experimental setup, a hydrogen cylinder pressurized to 200 bar was penetrated by a bullet to simulate an accidental release. Thermocouples were strategically placed to measure the temperature of the escaping gas, while the event was monitored with high-speed cameras and drones equipped with thermal imaging. Temperature measurements of the escaping gas showed minimal variation. However, ignition was observed a few meters from the release point, a surprising result suggesting the involvement of external factors, such as electrostatic discharge or environmental interactions, rather than direct ignition by hydrogen itself. These findings highlight the complexity of hydrogen behavior during high-pressure releases and underline the need for further research to understand and mitigate such risks.
2026
Jankuj, V., Lepik, P., Salzano, E., Mynarz, M. (2026). Accidental self-ignition of hydrogen released from pressurized cylinder. JOURNAL OF ELECTROSTATICS, 139, 1-7 [10.1016/j.elstat.2025.104222].
Jankuj, V.; Lepik, P.; Salzano, E.; Mynarz, M.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1085599
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