Back to Search
Start Over
Study on hydrogen dynamic leakage and flame propagation at normal-temperature and high-pressure.
- Source :
-
International Journal of Hydrogen Energy . Aug2023, Vol. 48 Issue 70, p27416-27426. 11p. - Publication Year :
- 2023
-
Abstract
- Experiments of two nozzle diameters at three ignition positions under three initial pressure conditions were carried out. The dynamic leakage characteristics and the stagnation parameters of flame propagation under normal temperature and high pressure conditions were studied. Based on van der Waal's equation, a model for predicting stagnation parameters, jet velocity and flow rate of hydrogen leakage was proposed. Compared with the experimental results, it was found that the maximum error occurred when the initial pressure was 200 bar. Theoretical leakage time was 1.66 s, experiment leakage time was 1.84 s, the error was 9.8%. Background-Oriented Schlieren image technology was used to record the flame development and propagation process after ignition. For the same nozzle diameter and ignition location, the higher pressure caused the flame to propagate faster upstream and downstream. For the same initial pressure and ignition position, a flame with a large nozzle diameter propagated faster upstream and downstream. For the same initial pressure and nozzle diameter, the farther the ignition point was, the greater the slope of flame attenuation when propagating upstream. Due to the attenuation of hydrogen concentration and jet velocity, the flame propagation velocity to the downstream decreased linearly with the increase of distance from the ignition location. • Dynamic leakage and combustion of hydrogen were studied experimentally. • The changing law of stagnation pressure and temperature was measured. • A mathematical model that could predict stagnation parameters was proposed. • The calculation error of theoretical model was in the range of ±9.8%. • Pressure, nozzle diameter and ignition position affect flame propagation. [ABSTRACT FROM AUTHOR]
- Subjects :
- *FLAME
*JETS (Fluid dynamics)
*LEAKAGE
*HYDROGEN
*FLOW velocity
*IGNITION temperature
Subjects
Details
- Language :
- English
- ISSN :
- 03603199
- Volume :
- 48
- Issue :
- 70
- Database :
- Academic Search Index
- Journal :
- International Journal of Hydrogen Energy
- Publication Type :
- Academic Journal
- Accession number :
- 167370128
- Full Text :
- https://doi.org/10.1016/j.ijhydene.2023.03.445