Papers
Topics
Authors
Recent
Search
2000 character limit reached

Analysis of Flame Structure and Interactions Between Chemical Reactions, Species Transport and Heat Release in Laminar Flames

Published 25 Apr 2024 in physics.chem-ph, cs.NA, and math.NA | (2404.16762v4)

Abstract: A novel method for analyzing counterflow diffusion flames, inspired by Zurada's sensitivity approach for neural networks, is proposed to identify critical species influencing the heat release rate in combustion. By further analyzing concentration changes of selected key species and radicals, this method reveals complex interactions among them across regions with temperature. To illustrate this approach, the study investigates the mechanisms of auto-ignition of n-heptane and ethanol mixtures in a counterflow configuration under low strain rates. In mixtures where n-heptane is dominant, the inhibition of low-temperature chemistry (LTC) by addition of ethanol impacts the heat release rate in regions where the temperature is higher through the diffusion of specific radicals such as CH2O, C2H4, C3H6, and H2O2. In mixtures where ethanol is dominant, the high ethanol fractions in the mixture increase the heat release rate, primarily due to ethanol decomposition and its subsequent reactions. This method effectively quantifies and compares the influence of both chemical kinetics and species diffusion effects, providing detailed insights into the interactions among species across the reactive field when analyzing the counterflow configuration of complex fuel mixtures.

Definition Search Book Streamline Icon: https://streamlinehq.com
References (16)
  1. doi:https://doi.org/10.1016/j.combustflame.2004.01.011.
  2. doi:https://doi.org/10.1016/S0082-0784(00)80610-4.
  3. doi:https://doi.org/10.1016/j.proci.2004.07.008.
  4. doi:https://doi.org/10.1016/j.combustflame.2022.112177.
  5. T. I. Farouk, F. L. Dryer, Isolated n-heptane droplet combustion in microgravity: “cool flames” – two-stage combustion, Combustion and Flame 161 (2) (2014) 565–581. doi:https://doi.org/10.1016/j.combustflame.2013.09.011.
  6. doi:https://doi.org/10.1016/j.combustflame.2012.09.006.
  7. doi:10.1021/ef401774f.
  8. doi:10.1021/ef100938u.
  9. doi:https://doi.org/10.1016/j.proci.2022.08.058.
  10. doi:https://doi.org/10.1016/S0951-8320(97)00016-1.
  11. doi:10.1080/13647830.2014.976274.
  12. doi:https://doi.org/10.1016/S0925-2312(96)00031-8.
  13. doi:10.1080/13647830802054207.
  14. doi:https://doi.org/10.1016/0017-9310(78)90230-2.
  15. doi:10.5281/zenodo.8137090.
  16. The San Diego Mechanism, http://web.eng.ucsd.edu/mae/groups/combustion/mechanism.html (2016).

Summary

No one has generated a summary of this paper yet.

Paper to Video (Beta)

No one has generated a video about this paper yet.

Whiteboard

No one has generated a whiteboard explanation for this paper yet.

Open Problems

We haven't generated a list of open problems mentioned in this paper yet.

Continue Learning

We haven't generated follow-up questions for this paper yet.

Collections

Sign up for free to add this paper to one or more collections.