Applied Mathematics and Mechanics (English Edition) ›› 2006, Vol. 27 ›› Issue (10): 1373-1381 .doi: https://doi.org/10.1007/s10483-006-1009-z

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SECOND-ORDER MOMENT MODEL FOR DENSE TWO-PHASE TURBULENT FLOW OF BINGHAM FLUID WITH PARTICLES

曾卓雄, 周力行, 刘志和   

  • 收稿日期:2004-06-17 修回日期:2006-07-02 出版日期:2006-10-18 发布日期:2006-10-18
  • 通讯作者: 曾卓雄

SECOND-ORDER MOMENT MODEL FOR DENSE TWO-PHASE TURBULENT FLOW OF BINGHAM FLUID WITH PARTICLES

ZENG Zhuo-xiong, ZHOU Li-xing, LIU Zhi-he   

    1. Department of Engineering Mechanics, Tsinghua University, Beijing 100084, P. R. China;
    2. Department of Mechanical Engineering, Nanchang Institute of Aeronautical Technology, Nanchang 330034, P. R. China
  • Received:2004-06-17 Revised:2006-07-02 Online:2006-10-18 Published:2006-10-18
  • Contact: ZENG Zhuo-xiong

Abstract: The USM-θ model of Bingham fluid for dense two-phase turbulent flow was developed, which combines the second-order moment model for two-phase turbulence with the particle kinetic theory for the inter-particle collision. In this model, phases interaction and the extra term of Bingham fluid yield stress are taken into account. An algorithm for USM-θ model in dense two-phase flow was proposed, in which the influence of particle volume fraction is accounted for. This model was used to simulate turbulent flow of Bingham fluid single-phase and dense liquid-particle two-phase in pipe. It is shown USM-θ model has better prediction result than the five-equation model, in which the particle-particle collision is modeled by the particle kinetic theory, while the turbulence of both phase is simulated by the two-equation turbulence model. The USM-θ model was then used to simulate the dense two-phase turbulent up flow of Bingham fluid with particles. With the increasing of the yield stress, the velocities of Bingham and particle decrease near the pipe centre. Comparing the two-phase flow of Bingham-particle with that of liquid-particle, it is found the source term of yield stress has significant effect on flow.

Key words: Bingham fluid, two-phase flow, yield stress, second-order moment model

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