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Clean Hydrogen Partnership

Explosion due to a release from a hydrogen storage tank

Event

Event ID
707
Quality
Description

In a ceramic factory, a leak on a 100 m³ tank containing 370 kg of hydrogen caused an explosion. A fire broke out soon after on the site and threatened storage of acetylene and hydrogen fluoride.

The generated pressure wave causes significant damage to exterior buildings (broken windows, secondary fire starts); a fragment of the tank was found several hundred meters from the place of the explosion. 23 people from the public who were slightly injured. A safety perimeter of 500 m is set up, road and rail traffic are stopped, the population evacuated.

The tank at the origin of the accident had been put into service in December 1982, after having been modified to notably increase its storage capacity. Its first regulatory check after 5 years of use had revealed nothing abnormal, the second was to take place a few months after the accident. Operating at a maximum operating pressure of 44.1 bar, the storage was replenished as soon as its pressure fell below 15 bar (several times a week). The last loading by an external company had been carried out less than 2 hours before the explosion.

Event Initiating system
Classification of the physical effects
Hydrogen Release and Ignition
Nature of the consequences
Macro-region
Europe
Country
Germany
Date
Component involved
CGH2 tank (stationary)
Failure mode
leak & ignition
Initiating cause
material degradation (fatigue)
Root CAUSE analysis

The INITIATING CAUSE was the hydrogen release caused by fatigue corrosion of the tank material (valve, welded area).

The modification work carried out on the tank and in particular the removal of the roof along the weld had caused a deformation of the tank (oval instead of circular section) and induced tension in the material. Frequent filling of the repository only accelerated the weakening process of the tank.

The ROOT CAUSE could be tentatively related to an inadequate approach to management of change. It is however unknown if the tank deformation was a mishaps in execution, and if the related reduction in lifetime had been considered. Inspection were regularly performed, but the techniques used at that time were not accurate enough to detect crack growth.

Root causes
Date entry in HIAD
01/01/2020

Facility

Application
Chemical industry
Sub-application
Ceramic Industry
Hydrogen supply chain stage
All components affected

hydrogen storage tank

Location type
Unknown
Location
industrial area
Operational condition
Pre-event occurrences

The tank at the origin of the accident had been put into service in December 1982, after having been modified to notably increase its storage capacity. Its first regulatory check after 5 years of use had revealed nothing abnormal, the second was to take place a few months after the accident.
Operating at a maximum operating pressure of 44.1 bar, the storage was replenished as soon as its pressure fell below 15 bar (several times a week). The last loading by an external company had been carried out less than 2 hours before the explosion.

Emergency & Consequences

Number of fatalities
0
Number of injured persons
0
Post-event summary

MATERIAL LOSS: Outside the establishment the explosion caused about 850 cases of material damages (fires, broken windows, etc.).
COMMUNITY DISRUPTION: The police delimited an area (500 metres large) around the plant. The rail traffic was stopped and the road traffic deviated.

Emergency action

The police delimited an area (500 metres large) around the plant. The rail traffic was stopped and the road traffic deviated.

Lesson Learnt

Lesson Learnt

One of the factors contributing to the failure of the tank was the elimination of the roofing of a original weld during modification works. Despite inspections had been regularly executed, these were not capable to detect crack growth.
The incident represented a milestone in the way how welds were handled and the occasion to step up efforts to understand welds degradation under hydrogen and to improve standards and regulations related to weld behaviour under dynamic loads and quality assessment of welds.

Since then, weld performance and deterioration assessment received more prominent attention, because of the difficult to establish a method able to relate the load on the materials to the state of the weld seam, and, from there, to be able to predict service life of the vessel.
Moreover, the periodic testing program had to be designed so that fatigue cracks could be detected. Instead of the traditional hydrostatic pressure test, instruments such as dye penetrant testing, ultrasonic testing, magnetic particle testing, or acoustic emission testing were more promising but needed further development and standardisation. The methods could be made more conclusive if used together, for an example ultrasound method carried out in conjunction with an acoustic emission test.

In-depth data

Release type
gas
Involved substances (% vol)
H2 100%
Released amount (kg)
370
Probable IGNITION SOURCE
Explosion type

References

Sources categories
eMARS
Reference & weblink

Behrend, Schmidtchen, Zetiscrift Schadenprimsa, 2/95, 28-33
https://www.schadenprisma.de/wp-content/uploads/pdf/1995/sp_1995_2_4.pdf
(accessed September 2025)

G. Reichardt,
Wasserstoffexplosion im Werk der Firma Haereus Quarzglas GmbH, Hanau,
VGB Kaftwerkstechnik73 (1993) heft 8

ARIA event No. 2903
https://www.aria.developpement-durable.gouv.fr/accident/2903/
(accessed March 2026)

Erlensee Aktuell
A review 30 years later
https://www.erlensee-aktuell.com/2021/10/05/blick-zurueck-wasserstoff-e…
(accessed June 2024)

Event 5204 of the UK database ICHEME in PDF
ICHEME database is no longer available for purchase, but data can be download as PDF for free.
https://www.icheme.org/knowledge/safety-centre/resources/accident-data/
(accessed October 2020)