4.5 Article

Numerical simulation of flow field and residence time of nanoparticles in a 1000-ton industrial multi-jet combustion reactor

期刊

CHINESE JOURNAL OF CHEMICAL ENGINEERING
卷 51, 期 -, 页码 86-99

出版社

CHEMICAL INDUSTRY PRESS CO LTD
DOI: 10.1016/j.cjche.2021.12.008

关键词

Combustion reactor; Residence time distribution; Particle flow trajectory; Back-mixing; Numerical simulation

资金

  1. Shanghai Technology Research Leader [20XD1433600]
  2. Program for Professor of Special Appointment (Eastern Scholar) at Shanghai Institutes of High Learning
  3. Basic Research Program of Shanghai [17JC1402300]
  4. Shanghai City Board of education research and innovation project
  5. Fundamental Research Funds for the Central Universities [222201718002]
  6. Feringa Nobel Prize Scientist Joint Research Center
  7. National Natural Science Foundation of China [21978088, 91534202, 51673063]

向作者/读者索取更多资源

In this study, a three-dimensional physical model of an industrial multi-jet combustion reactor was established and numerical simulations were conducted to investigate the flow field characteristics and particle behavior in the reactor. The results show that reactor aspect ratios, central jet gas velocity, and particle size have significant effects on the flow field characteristics and particle behavior. These findings provide valuable insights for the structural regulation of nanoparticles and the design of combustion reactors.
In this work, by establishing a three-dimensional physical model of a 1000-ton industrial multi-jet combustion reactor, a hexahedral structured grid was used to discretize the model. Combined with realizable k-e model, eddy-dissipation-concept, discrete-ordinate radiation model, hydrogen 19-step detailed reaction mechanism, air age user-defined-function, velocity field, temperature field, concentration field and gas arrival time in the reactor were numerically simulated. The Euler-Lagrange method combined with the discrete-phase-model was used to reveal the flow characteristics of particles in the reactor, and based on this, the effects of the reactor aspect ratios, central jet gas velocity and particle size on the flow field characteristics and particle back-mixing degree in the reactor were investigated. The results show that with the decrease of aspect ratio in the combustion reactors, the velocity and temperature attenuation in the reactor are intensified, the vortex phenomenon is aggravated, and the residence time distribution of nanoparticles is more dispersed. With the increase in the central jet gas velocities in reactors, the vortex lengthens along the axis, the turbulence intensity increases, and the residence time of particles decreases. The back-mixing degree and residence time of particles in the reactor also decrease with the increase in particle size. The simulation results can provide reference for the structural regulation of nanoparticles and the structural design of combustion reactor in the process of gas combustion synthesis. (c) 2021 The Chemical Industry and Engineering Society of China, and Chemical Industry Press Co., Ltd. All rights reserved.

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