Syngas has gained attention recently due to its high energy density and environmentally friendly characteristics. Flame stability plays an important role in flame propagation in energy conversion devices. Experimental studies were performed in a cylindrical chamber to investigate flame instability of syngas/air/diluent mixture. A Z-shape Schlieren system coupled with a high-speed complementary metal–oxide–semiconductor camera was used to record flame pictures up to 40,000 frames per second. In this research, syngas is a mixture of hydrogen and carbon monoxide and diluent is a blend of 14% CO2 and 86% N2 with the same specific heat as the burned gases. Three main flame instabilities namely Rayleigh–Taylor (body force) instability, hydrodynamic instability, and thermal-diffusive instability have been studied. For the onset of flame instability, a power law correlation for the ratio of critical pressure to initial pressure of syngas/air/diluent flames over a wide range of initial temperatures (298–450 K), initial pressures (1.0–2.0 atm), equivalence ratios (0.6–3.0), diluent concentrations (0–10%), and hydrogen percentages (5–25%) in the fuel has been developed.
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August 2019
Research-Article
The Critical Pressure at the Onset of Flame Instability of Syngas/Air/Diluent Outwardly Expanding Flame at Different Initial Temperatures and Pressures
Ziyu Wang,
Ziyu Wang
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
e-mail: wang.ziyu2@husky.neu.edu
Engineering Department,
Northeastern University,
Boston, MA 02115
e-mail: wang.ziyu2@husky.neu.edu
Search for other works by this author on:
Ziwei Bai,
Ziwei Bai
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
Engineering Department,
Northeastern University,
Boston, MA 02115
Search for other works by this author on:
Guangying Yu,
Guangying Yu
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
Engineering Department,
Northeastern University,
Boston, MA 02115
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Sai Yelishala,
Sai Yelishala
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
Engineering Department,
Northeastern University,
Boston, MA 02115
Search for other works by this author on:
Hameed Metghalchi
Hameed Metghalchi
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
Engineering Department,
Northeastern University,
Boston, MA 02115
Search for other works by this author on:
Ziyu Wang
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
e-mail: wang.ziyu2@husky.neu.edu
Engineering Department,
Northeastern University,
Boston, MA 02115
e-mail: wang.ziyu2@husky.neu.edu
Ziwei Bai
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
Engineering Department,
Northeastern University,
Boston, MA 02115
Guangying Yu
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
Engineering Department,
Northeastern University,
Boston, MA 02115
Sai Yelishala
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
Engineering Department,
Northeastern University,
Boston, MA 02115
Hameed Metghalchi
Mechanical and Industrial
Engineering Department,
Northeastern University,
Boston, MA 02115
Engineering Department,
Northeastern University,
Boston, MA 02115
1Corresponding author.
Contributed by the Advanced Energy Systems Division of ASME for publication in the JOURNAL OF ENERGY RESOURCES TECHNOLOGY. Manuscript received January 10, 2019; final manuscript received January 11, 2019; published online February 18, 2019. Special Editor: Reza Sheikhi.
J. Energy Resour. Technol. Aug 2019, 141(8): 082207 (11 pages)
Published Online: February 18, 2019
Article history
Received:
January 10, 2019
Revised:
January 11, 2019
Citation
Wang, Z., Bai, Z., Yu, G., Yelishala, S., and Metghalchi, H. (February 18, 2019). "The Critical Pressure at the Onset of Flame Instability of Syngas/Air/Diluent Outwardly Expanding Flame at Different Initial Temperatures and Pressures." ASME. J. Energy Resour. Technol. August 2019; 141(8): 082207. https://doi.org/10.1115/1.4042720
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