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Accelerative propagation and explosion triggering by expanding turbulent premixed flames.

V'yacheslav Akkerman1, Swetaprovo Chaudhuri, Chung K Law

  • 1Department of Mechanical and Aerospace Engineering, West Virginia University, Morgantown, West Virginia 26506-6106, USA. Vyacheslav.Akkerman@mail.wvu.edu

Physical Review. E, Statistical, Nonlinear, and Soft Matter Physics
|March 19, 2013
PubMed
Summary

Accelerating turbulent premixed flames propagate via a power law, significantly increasing detonation triggering potential in turbulent environments. Hydrodynamic instability further enhances this acceleration at larger scales.

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Area of Science:

  • * Combustion Science
  • * Fluid Dynamics
  • * Chemical Engineering

Background:

  • * Analysis of outwardly propagating, accelerating turbulent premixed flames.
  • * Investigation of flame acceleration's role in explosion triggering.
  • * Examination of flame dynamics and morphology.

Purpose of the Study:

  • * To analyze the dynamics and morphology of accelerating turbulent premixed flames.
  • * To determine the effect of flame acceleration on explosion triggering.
  • * To investigate flame propagation in externally forced, near-isotropic turbulent environments.

Main Methods:

  • * Guided by recent theoretical results.
  • * Substantiated by experimental data.
  • * Analysis of power-law propagation based on average global flame radius.

Main Results:

  • * Accelerating flame front propagation follows a well-defined power law.
  • * The power-law exponent is substantially larger than for cellular laminar flames.
  • * Effective turbulence intensity experienced by the flame is derived.

Conclusions:

  • * Turbulent environments significantly facilitate detonation triggering.
  • * Hydrodynamic instability enhances flame acceleration at large scales.
  • * Findings support the potential for detonation triggering in turbulent combustion.