Control of the Development of Swirling Airflow Dynamics and Its Impact on Biomass Combustion Characteristics

Author:

Barmina I.1,Valdmanis R.1,Zaķe M.1

Affiliation:

1. Institute of Physics, University of Latvia, 32 Miera Str., Salaspils , LV-2169, Latvia

Abstract

Abstract The development of the swirling flame flow field and gasification/ combustion dynamics at thermo-chemical conversion of biomass pellets has experimentally been studied using a pilot device, which combines a biomass gasifier and combustor by varying the inlet conditions of the fuel-air mixture into the combustor. Experimental modelling of the formation of the cold nonreacting swirling airflow field above the inlet nozzle of the combustor and the upstream flow formation below the inlet nozzle has been carried out to assess the influence of the inlet nozzle diameter, as well primary and secondary air supply rates on the upstream flow formation and air swirl intensity, which is highly responsible for the formation of fuel-air mixture entering the combustor and the development of combustion dynamics downstream of the combustor. The research results demonstrate that at equal primary axial and secondary swirling air supply into the device a decrease in the inlet nozzle diameter enhances the upstream air swirl formation by increasing swirl intensity below the inlet nozzle of the combustor. This leads to the enhanced mixing of the combustible volatiles with the air swirl below the inlet nozzle of the combustor providing a more complete combustion of volatiles and an increase in the heat output of the device.

Publisher

Walter de Gruyter GmbH

Subject

General Physics and Astronomy,General Engineering

Reference14 articles.

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2. 2. Meier, W., Duan, X.R., & Weigand, P. (2006). Investigations of swirl flames in a gas turbine model combustor: Turbulence-chemistry interactions. Combustion and Flame, 144, 225-236.

3. 3. Külsheimer, C., & Büchner, H. (2002). Combustion dynamics of turbulent swirling flames, Combustion and Flame, 131, 70-84.

4. 4. Syred, N., & Beer, J.M. (1974). Combustion in swirling flows: A review. Combustion and Flame, 23(2), 143-201.

5. 5. Haber, L.Ch. (2003). Investigation of Dynamics in Turbulent Swirling Flows Aided by Linear Stability Analysis. Dissertation of Doctor of Philosophy. Virginia Polytechnic Institute and State University.

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