Numerical Investigation of the Effects of Diffusion Time on the Mechanisms of Transition from a Turbulent Jet Flame to Detonation in a H2-Air Mixture
Abstract
:1. Introduction
2. Governing Equation
The Turbulence Models
3. Numerical Method
3.1. Characteristics of Combustion Geometry
3.2. Mesh Sensitivity Analysis
3.3. Numerical Validation
4. Results
4.1. Effects of Inhomogeneity on the FA and DDT in Lean Mixtures
- (1)
- Initial flame propagation stage:
- (2)
- Jet flame passing through the obstacle stage:
4.2. Effects of Inhomogeneity on FA and DDT in Stoichiometric Mixtures
5. Conclusions
- In the average 22.5% concentration H2-air mixture, detonation began in all the cases, and comparing the flame speed graphs showed that a decrease in the diffusion time and an increase in the mixture inhomogeneity sped up the flame propagation and the DDT occurrence in the channel.
- In the average 30% concentration H2-air mixture, deflagration to detonation transition occurred in all the cases, and the mixture inhomogeneity weakened the FA and delayed the DDT.
- This research showed that the inhomogeneity behavior differed between lean and stoichiometric mixtures; in the lean mixture, increasing the inhomogeneity reduced the run-up distance to detonation, while in the stoichiometric mixture, increasing the diffusion time (homogeneity) did so.
- A feature of the turbulent jet flame-to-detonation transition study was the formation of a supersonic turbulent jet in the downstream part of the obstacle. At a certain stage of the FA, the speed at the obstacle bottleneck reached that of sound, causing the flame to choke.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
Thermal diffusivity (m2/s) | |
c | Reaction progress variable |
Gas diffusion coefficient (m2/s) | |
et | Total internal energy (J/kg) |
g | Body force (m2/s) |
k | Turbulent kinetic energy (J/kg) |
p | Pressure (Pa) |
T | Temperature (K) |
td | Diffusion time (s) |
tign | Auto-ignition delay time (s) |
u | Velocity (m/s) |
fH | Mass fraction of the mixture |
Greek letters | |
Average density of the gas mixture (kg/m3) | |
Kronecker delta | |
Dynamic viscosity (kg/m s) | |
Deflagration source term (kg/m3 s) | |
Ignition source term for reaction progress variable (kg/m3 s) | |
Specific turbulent dissipation rate (1/s) | |
ε | Rate of dissipation of turbulent kinetic energy (J/kg s) |
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Saeid, M.H.S.; Khadem, J.; Emami, S.; Oh, C.B. Numerical Investigation of the Effects of Diffusion Time on the Mechanisms of Transition from a Turbulent Jet Flame to Detonation in a H2-Air Mixture. Fire 2023, 6, 434. https://doi.org/10.3390/fire6110434
Saeid MHS, Khadem J, Emami S, Oh CB. Numerical Investigation of the Effects of Diffusion Time on the Mechanisms of Transition from a Turbulent Jet Flame to Detonation in a H2-Air Mixture. Fire. 2023; 6(11):434. https://doi.org/10.3390/fire6110434
Chicago/Turabian StyleSaeid, Mohammad Hossein Shamsaddin, Javad Khadem, Sobhan Emami, and Chang Bo Oh. 2023. "Numerical Investigation of the Effects of Diffusion Time on the Mechanisms of Transition from a Turbulent Jet Flame to Detonation in a H2-Air Mixture" Fire 6, no. 11: 434. https://doi.org/10.3390/fire6110434
APA StyleSaeid, M. H. S., Khadem, J., Emami, S., & Oh, C. B. (2023). Numerical Investigation of the Effects of Diffusion Time on the Mechanisms of Transition from a Turbulent Jet Flame to Detonation in a H2-Air Mixture. Fire, 6(11), 434. https://doi.org/10.3390/fire6110434