Simulation of particle deposition on the tube in ash-laden flow using the lattice Boltzmann method

被引:11
|
作者
Wang, Naihua [1 ]
Guo, Jianfei [1 ,2 ]
Gu, Mingzhou [1 ]
Cheng, Lin [1 ]
机构
[1] Shandong Univ, Inst Thermal Sci & Engn, Jinan 250061, Peoples R China
[2] Luozhuang Econ & Informat Technol Bur, Linyi 276017, Peoples R China
关键词
Lattice Boltzmann-Lagrange tracking method; Gas-solid two-phase flow; Deposition; Circular tube; Elliptical tube; CIRCULAR-CYLINDER; PRESSURE;
D O I
10.1016/j.icheatmasstransfer.2016.10.012
中图分类号
O414.1 [热力学];
学科分类号
摘要
The LBM-Lagrange tracking method with multiple relaxation time (MRT) model has been developed to predict the flow field and particle deposition a circular or elliptical tube in ash-laden gas turbulent flow with Re of 10,229. The model can be used for predict particle deposition effect on thermal resistance or fouling factor of heat exchangers mostly operating in turbulent flow. Particle deposition morphology on the circular and the elliptical tubes were obtained with the lattice Boltzmann method (LBM). The particle deposition mechanism has been investigated. The dominating mechanism of particle deposition on the circular tube is Brownian diffusion for the Stokes number of 0.002, whereas the dominating mechanism of particle deposition is drag inertia for the Stokes number larger than 0.031. When the long axis of the elliptical tube is parallel to the flow, both the collision efficiency and the deposition efficiency for the elliptical tube are fewer than those of the circular tube which means less particle deposition. It also can be concluded that both ratios of the collision efficiency and the deposition efficiency decrease with increasing axial length ratio of the elliptical tube. The elliptical tube is better than the circular tube as heat transfer surface in the aspect of preventing ash particle deposition. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:31 / 38
页数:8
相关论文
共 50 条
  • [41] Direct numerical simulation of turbulent pipe flow using the lattice Boltzmann method
    Peng, Cheng
    Geneva, Nicholas
    Guo, Zhaoli
    Wang, Lian-Ping
    JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 357 : 16 - 42
  • [43] SIMULATION OF FLOW BOILING OF NANOFLUID IN TUBE BASED ON LATTICE BOLTZMANN MODEL
    Yao, Shouguang
    Huang, Tao
    Zhao, Kai
    Zeng, Jianbang
    Wang, Shuhua
    THERMAL SCIENCE, 2019, 23 (01): : 159 - 168
  • [44] COMPRESSIBLE FLUID FLOW SIMULATION USING FINITE DIFFERENCE LATTICE BOLTZMANN METHOD
    Abdollahi, Vahid
    Nejat, Amir
    PROCEEDINGS OF THE ASME 10TH BIENNIAL CONFERENCE ON ENGINEERING SYSTEMS DESIGN AND ANALYSIS, 2010, VOL 4, 2010, : 7 - 16
  • [45] Simulation of Ferrofluid Flow for Magnetic Drug Targeting Using the Lattice Boltzmann Method
    Kandelousi, Mohsen Sheikholeslami
    Ellahi, Rahnnat
    ZEITSCHRIFT FUR NATURFORSCHUNG SECTION A-A JOURNAL OF PHYSICAL SCIENCES, 2015, 70 (02): : 115 - 124
  • [46] Simulation of pulsatile flow in a circular pipe using an axisymmetric lattice Boltzmann method
    Li, Xiao-Fei
    Tang, Gui-Hua
    Ye, Pei-Xing
    Tao, Wen-Quan
    Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2010, 31 (05): : 810 - 812
  • [47] Simulation of two-dimensional oscillating flow using the lattice Boltzmann method
    Wang, Y.
    He, Y. L.
    Tang, G. H.
    Tao, W. Q.
    INTERNATIONAL JOURNAL OF MODERN PHYSICS C, 2006, 17 (05): : 615 - 630
  • [48] Nmerical Simulation of Blood Flow in Stented Aneurysm using Lattice Boltzmann Method
    Zhang, X. J.
    Li, X. Y.
    He, F.
    APCMBE 2008: 7TH ASIAN-PACIFIC CONFERENCE ON MEDICAL AND BIOLOGICAL ENGINEERING, 2008, 19 : 113 - 116
  • [49] Numerical simulation of transient flow with column separation using the lattice Boltzmann method
    Wu, Kai
    Feng, Yujie
    Xu, Ying
    PROGRESS IN COMPUTATIONAL FLUID DYNAMICS, 2022, 22 (05): : 331 - 341
  • [50] SIMULATION OF LONG MICROCHANNEL FLOW IN TRANSITIONAL REGIME USING LATTICE BOLTZMANN METHOD
    Normohammadzadeh, Mohammad
    Rahnama, Mohammad
    Jafari, Saeed
    Akhgar, Alireza
    PROCEEDINGS OF THE 8TH INTERNATIONAL CONFERENCE ON NANOCHANNELS, MICROCHANNELS AND MINICHANNELS, 2010, PTS A AND B, 2011, : 413 - 419