Experimental and Numerical Study of the Flammability Limits in a CH4/O2 Torch Ignition System
Abstract
:1. Introduction
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- analytical and numerical investigation on the ignition limits of methane-oxygen mixtures;
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- the creation of the control algorithm for precise mass flow rate quantification in the ignition system;
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- the building of the test bench, plan of tests, methodology of the experimental search of ignition limits.
2. Material and Methods
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- Experimental research on ignition limits provided by CPL for gas torch ignition system working on GOX/GCH mixture in a wide range of possible O/F ratios and Reynolds numbers. The test bench for this experiment was built at the CPL test facility;
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3. Experimental Setup
3.1. Ignition System
3.2. Igniter
3.3. Test Bench Assembly
3.4. Mass Flow Rate Estimation
3.5. Numerical Experiment
4. Results and Discussion
5. Conclusions
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- A wide range of the input flow conditions (mass flow rates, O/F ratios, and Re numbers) was tested experimentally, from which was chosen an optimal ignition regime of the mass flow rates = 420 mg/s, = 200 mg/s that corresponds to dimensionless flow parameters O/F = 2.1 and = 21,320.
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- Ignition limits for a methane-oxygen flow mixture inside the vortex combustion chamber were found.
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- Regions of structure overheating and thermocouple failure were mapped.
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- An efficient numerical model was built and validated, allowing to study a flame initiation process numerically inside the vortex combustion chamber.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
CPL | Chemical Propulsion Laboratory |
LOX | Liquid Oxygen |
GCH | Gaseous Methane |
GOX | Gaseous Oxygen |
UnB | University of Brasilia |
Nomenclature | |
mass flow rate, g/s | |
oxidizer-to-fuel ratio, - | |
p | pressure, bar |
t | time, s |
T | temperature, °C |
W | power, W |
valve opening level, - | |
mass flow rate error, % | |
equivalence ratio, - | |
Reynolds number, - | |
Subscripts | |
0 | stagnation property |
f | fuel |
oxidizer | |
D | diameter |
Appendix A
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GOX | 7 | 150 | 290 | 420 | 560 | 700 | 840 | 980 | 1120 | 1260 |
GCH | 2 | 40 | 80 | 120 | 160 | 200 | 240 | 280 | 320 | 360 |
0.04 | 0.71 | 1.42 | 2.13 | 2.84 | 3.55 | 4.26 | 4.97 | 5.69 | 6.40 |
Bound | Condition | Value | , K | Species |
---|---|---|---|---|
Methane inlet | Mass flow, mg/s | 297 | 1.0 [CH] | |
Oxygen inlet | Mass flow, mg/s | 297 | 1.0 [O] | |
Nozzle exit | Static pressure | 1 bar | 300 | 0.79 [N] |
0.21 [O] | ||||
Wall | Velocity | V = 0 | ||
Heat flux |
Case no. | Experimental Ignition | Numerical Ignition |
---|---|---|
1 | yes | yes |
2 | no | no |
3 | yes | yes |
4 | sometimes | possible |
5 | no | no |
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Shynkarenko, O.; Simone, D.; Lee, J.; Bertoldi, A.E.M. Experimental and Numerical Study of the Flammability Limits in a CH4/O2 Torch Ignition System. Energies 2022, 15, 3857. https://doi.org/10.3390/en15113857
Shynkarenko O, Simone D, Lee J, Bertoldi AEM. Experimental and Numerical Study of the Flammability Limits in a CH4/O2 Torch Ignition System. Energies. 2022; 15(11):3857. https://doi.org/10.3390/en15113857
Chicago/Turabian StyleShynkarenko, Olexiy, Domenico Simone, Jungpyo Lee, and Artur E. M. Bertoldi. 2022. "Experimental and Numerical Study of the Flammability Limits in a CH4/O2 Torch Ignition System" Energies 15, no. 11: 3857. https://doi.org/10.3390/en15113857
APA StyleShynkarenko, O., Simone, D., Lee, J., & Bertoldi, A. E. M. (2022). Experimental and Numerical Study of the Flammability Limits in a CH4/O2 Torch Ignition System. Energies, 15(11), 3857. https://doi.org/10.3390/en15113857