Experimental Study of Turbulent Diffusion Flame Structure and Its Similarity.
Tamio IDA, Kazutomo Ohtake
Abstract
Open-access reader
Tamio IDA, Kazutomo Ohtake
Abstract
Open-access reader
The interaction between reaction and turbulent mixing strongly affects for the structures of a turbulent diffusion flame, the characteristics of which are greatly affected by the combination of working conditions such as burner exit configurations, burner size, fuel and oxidant. This study discusses in detail the turbulent diffusion flame structure and its similarity using a laboratory-scale turbulent diffusion flame measured by laser Rayleigh scattering. It also discusses the factors affecting the similarity in flame structure and the turbulent diffusion flame length determined using its turbulent power spectral density. The -5/3 power law holds in the fuel jet and combusion regions. In the air entrainment regions, however, the -5/3 and -1 power laws coexist, and this shows that both turbulent and molecular thermal diffusions become important. The constancy of turbulent diffusion flame length at high Reynolds number is discussed with respects the characteristics of flame structure.
A significance statement is not available in the OpenAlex record.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
The interaction between reaction and turbulent mixing strongly affects for the structures of a turbulent diffusion flame, the characteristics of which are greatly affected by the combination of working conditions such as burner exit configurations, burner size, fuel and oxidant. This study discusses in detail the turbulent diffusion flame structure and its similarity using a laboratory-scale turbulent diffusion flame measured by laser Rayleigh scattering. It also discusses the factors affecting the similarity in flame structure and the turbulent diffusion flame length determined using its turbulent power spectral density. The -5/3 power law holds in the fuel jet and combusion regions. In the air entrainment regions, however, the -5/3 and -1 power laws coexist, and this shows that both turbulent and molecular thermal diffusions become important. The constancy of turbulent diffusion flame length at high Reynolds number is discussed with respects the characteristics of flame structure.
Key concepts: Turbulence, Turbulent diffusion, Flame structure, Diffusion flame, Mechanics, Jet (fluid), Combustor, Diffusion