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VIRTUAL DESIGN OF STANDS FOR EXPERIMENTING WITH HYDROGEN EXPLOSIONS

Nicolae Ioan Vlasin, Cristian Raul Cioară, Gheorghe Daniel Florea, Adrian Bogdan Şimon-Marinică, Zoltan Vass

First published: 2023-10-01https://doi.org/10.5593/sgem2023/4.1/s17.19View metrics

Abstract

Hydrogen explosions can occur in industrial processes, in laboratories, in hydrogen production and storage processes, or in new combustion processes used in modern transportation. This gas presents a particularly dangerous potential due to its flammability properties. The combustion reaction of this gas mixed with air or oxygen is strongly exothermic, resulting in a rapid increase in temperatures and pressures developed. When these overpressures become too great to be supported by the vessels or enclosures where the combustion reaction takes place, the walls of the storage/transport vessels suffer ruptures, thus leading to serious accidents. Hydrogen explosions occur when three conditions are met at the same time: a sufficient concentration of hydrogen, a sufficient concentration of oxygen and an effective source of initiation of the explosive mixture (open flame, electric spark, etc.). To prevent this type of events, it is necessary to know how to handle, process and store this gas, to ensure the implementation and compliance with security protocols. This may include using explosion-proof equipment and ventilation systems and monitoring the presence of hydrogen gas in the environment. Hydrogen explosion research has been ongoing for many years and focuses on understanding the fundamental mechanisms behind the explosive behavior of hydrogen gas, as well as developing new strategies to prevent or mitigate hydrogen explosions. The present work supports research in this field, studying the possibilities of building stands where the explosions of air-hydrogen mixtures can be experimented in a controlled manner. The design of the stand is carried out in the virtual environment, through computer simulations of hydrogen explosions in different enclosures and interconnected spaces. The results of these simulations concern the behavior of the flame front, the maximum values of temperatures and overpressures generated by the explosions, as well as the locations where these values were recorded, at different hydrogen concentrations. The usefulness of the resulting data can be found in the a priori approach of safe construction methods of stands for conducting physical experiments on hydrogen explosions, stands that are extremely necessary in the process of researching ways to prevent phenomena of this type.

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Publication details

Title
VIRTUAL DESIGN OF STANDS FOR EXPERIMENTING WITH HYDROGEN EXPLOSIONS
Authors
Nicolae Ioan Vlasin, Cristian Raul Cioară, Gheorghe Daniel Florea, Adrian Bogdan Şimon-Marinică, Zoltan Vass
Proceedings
SGEM International Multidisciplinary Scientific GeoConference- EXPO Proceedings; 23rd International Multidisciplinary Scientific GeoConference Proceedings SGEM 2023, Energy and Clean Technologies, Vol 23, Issue 4.1
Publisher
STEF92 Technology
Year
2023
Pages
149-156
SWS Citekey
Vlasin202317149156
ISSN
1314-2704
ISBN
978-619-7603-59-0
Language
en
Publication type
Conference Paper
Proceedings contents
Open official contents
Keywords
References6
  1. Young-Jo Do, Crowl D. "Explosion Characteristics of Hydrogen-Air Mixtures in a Spherical Vessel", Process Safety Progress, vol. 29, no. 3, 2010, pp. 216-223, DOI: 10.1002/prs.10370

  2. Bjerketvedt, D., Bakke, J.R., Wingerden, K.V., Gas explosion handbook, Journal of Hazardous Materials, vol. 52, 1997, pp.1�150 DOI: 10.1016/s0304-3894(97)81620-2

  3. Sun, X.; Lu, S., Effect of orifice plate on the transmission mechanism of a detonation wave in hydrogen-oxygen mixtures. International Journal of Hydrogen Energy, vol. 45, issue 22, 2020, pp12593�12603 DOI: 10.1016/j.ijhydene.2020.02.162

  4. Xing H, Yu R, Xu G, Li X, Qiu Y, Wang D, Li B, Xie L., Theoretical and Experimental Investigation of Explosion Characteristics of Hydrogen Explosion in a Closed Vessel. Energies, vol. 15/22, 2022; pp 8630, DOI: 10.3390/en15228630

  5. Salehi, F., Baalisampang, T., & Abbassi, R., (2022). Numerical modeling towards the safety assessment of multiple hydrogen fires in confined areas, Process Safety and Environmental Protection, vol. 160, pp 594-609, DOI: 10.1016/j.psep.2022.02.057

  6. Molkov V., Fundamentals of hydrogen safety engineering, Chapter P: Hydrogen fundamental properties, pp. 9, online at https://www.h2euro.org/hyfacts/2014/06/26/training-material/

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