Bifurcation, pattern formation and chaos in combustion
Creators
- 1. Northwestern Univ., Evanston, IL (United States). Dept. of Engineering Sciences and Applied Mathematics
Description
In this paper problems in gaseous combustion and in gasless condensed phase combustion are studied both analytically and numerically. In gaseous combustion we consider the problem of a flame stabilized on a line source of fuel. The authors find both stationary and pulsating axisymmetric solutions as well as stationary and pulsating cellular solutions. The pulsating cellular solutions take the form of either traveling waves or standing waves. Transitions between these patterns occur as parameters related to the curvature of the flame front and the Lewis number are varied. In gasless condensed phase combustion both planar and nonplanar problems are studied. For planar condensed phase combustion we consider two models: accounts for melting and does not. Both models are shown to exhibit a transition from uniformly to pulsating propagating combustion when a parameter related to the activation energy is increased. Upon further increasing this parameter both models undergo a transition to chaos: by intermittency and by a period doubling sequence. In nonplanar condensed phase combustion the nonlinear development of a branch of standing wave solutions is studied and is shown to lead to relaxation oscillations and subsequently to a transition to quasi-periodicity
Additional details
Publishing Information
- Publisher
- Springer-Verlag New York Inc.
- Imprint Place
- New York, NY (United States)
- ISBN
- 0-387-97583-7
- Imprint Title
- Dynamical issues in combustion theory
- Imprint Pagination
- 257 p.
- Journal Page Range
- p. 1-36.
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 24016898
- Subject category
- S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
- Descriptors DEI
- ACTIVATION ENERGY; ANALYTICAL SOLUTION; CALCULATION METHODS; COMBUSTION; FLAMES; GASES; PHASE STUDIES; THERMODYNAMICS; WAVE PROPAGATION
- Descriptors DEC
- CHEMICAL REACTIONS; ENERGY; FLUIDS; OXIDATION
Optional Information
- Funding organization
- National Science Foundation, Washington, DC (United States).