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Experimental study and numerical simulation of gas-particle flows with radial bias combustion and centrally fuel rich swirl burners

  • Zheng Qi Li*
  • , Jue Zhou
  • , Zhi Chao Chen
  • , Rui Sun
  • , Yu Kun Qin
  • *Corresponding author for this work
  • School of Energy Science and Engineering, Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Numerical simulation is applied to gas-particle flows of the primary and the secondary air ducts and burner region, and of two kinds of swirl burners. The modeling results of Radial Bias Combustion (RBC) burner well agreed with the data from the three-dimensional Phase-Doppler anemometry (PDA) experiment by Li, et al. The modeling test conducted in a 1025 t/h boiler was to study the quality of aerodynamics for a Central Fuel Rich (CFR) burner, and the Internal Recirculation Zone (IRZ) was measured. In addition, gas-particle flows with a CFR burner were investigated by numerical simulation, whose results accorded with the test data fundamentally. By analyzing the distribution of gas velocity and trajectories of particles respectively, it is found that the primary air's rigidity of CFR burner is stronger than that of RBC burner, and the primary air mixes with the secondary air later. Furthermore, high concentration region of pulverized coal exists in the burner's central zone whose atmosphere is reduced, and trajectories of particles in IRZ of CFR burner are longer than that of RBC burner. They are favorable to coal's ignition and the reduction of NOx emission.

Original languageEnglish
Pages (from-to)1-8
Number of pages8
JournalJournal of Harbin Institute of Technology (New Series)
Volume15
Issue number1
StatePublished - Feb 2008
Externally publishedYes

Keywords

  • Gas-particle flows
  • Numerical simulation
  • Swirl burner

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