4.7 Article

Investigation of transfer processes in swirling flows in application to vortex furnaces for coal fuel

期刊

出版社

ELSEVIER FRANCE-EDITIONS SCIENTIFIQUES MEDICALES ELSEVIER
DOI: 10.1016/j.ijthermalsci.2020.106715

关键词

Four-vortex furnace; Aerodynamics; Swirl flow structure; Laboratory experiment; PIV; Numerical modeling

资金

  1. Russian Science Foundation [19-19-00443, AAAA-A17-117022850029-9]
  2. Russian Science Foundation [19-19-00443] Funding Source: Russian Science Foundation

向作者/读者索取更多资源

This study investigates the swirling flow structure in a laboratory model of a promising pulverized-coal boiler with a four-vortex combustion circuit using experimental and numerical methods. The results show that a stable four-vortex flow structure is crucial for effective cleaning of the boiler's heat-exchange surfaces. Numerical calculations using the AnsysFluent CFD package were in good agreement with experimental data, validating the mathematical model for future simulations of coal combustion processes.
In this work, the swirling flow structure was studied experimentally and numerically in a wide range of operating parameters at a laboratory model of the promising furnace of pulverized-coal boiler with a four-vortex combustion circuit. The basic aerodynamic features of construction, affecting the efficiency of fuel combustion, were investigated by the example of air under the atmospheric pressure (Re similar to 104) for the isothermal case. The data on distribution of averaged and pulsation velocity characteristics were experimentally obtained in various areas of the model using the non-contact PIV method (Particle Image Velocimetry). The results of measurements carried out in a wide range of initial velocities allow distinguishing three flow regimes (13 is the ratio of flow velocities at the outlet of the side and frontal nozzles): the flow regime with regular structure (four symmetric vortices, 13 1.8, the flow becomes sensitive to asymmetry in the input conditions. At the same time, at high 13 0.9, the development of asymmetry is accompanied by the breakdown of large vortices into smaller vortices. A stable four-vortex flow structure at 13 1.8 is important for practical applications, since in this regime, effective washing of the heat-exchange surfaces of the boiler will be ensured, thus avoiding their slagging. The results of laboratory measurements obtained in the range of flow regimes, self-similar by the Reynolds number (104< 106), allowed us to verify the mathematical model. Numerical calculations of aerodynamics were performed using the AnsysFluent CFD package. All considered turbulence models (URANS k-w SST, URANS RSM, DES) reproduce well the averaged flow structure in the combustion chamber. The results of numerical calculations are in good agreement with experimental data. The verified mathematical model and calculation method allow us a future transition to simulate the combustion of coal fuel, taking into account all the main processes of heat and mass transfer in the furnace.

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