NUMERICAL SIMULATION OF DEPOSITION OF CALCIUM CARBONATE PARTICLES SUSPENDED IN THE TURBULENT COOLING WATER FLOW

被引:0
|
作者
Izadi, M. [1 ]
Aidun, D. K. [1 ]
Marzocca, P. [1 ]
Tian, L.
机构
[1] Clarkson Univ, Mech & Aeronaut Eng Dept, Potsdam, NY 13699 USA
关键词
BROWNIAN-MOTION; MODEL; SMOOTH; SPHERE; LIFT;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Calcium carbonate is predominantly present in cooling tower's water and is usually the principal cause of hard water. This paper applies the modeling technique typically used for aerosol deposition to simulate the deposition process of calcium carbonate nano- and micro-particles suspended in turbulent cooling water flows. The mean turbulent velocity field and the fluctuating velocities are determined by the k-epsilon and RSM turbulence models by simulating the water flow in a typical heat exchanger horizontal tube. Commercial software (ANSYS FLUENT (TM) 12.1.4) is used for turbulence mean flow modeling and the simulation of turbulence fluctuations is performed by stochastic models. Particle deposition velocities are obtained for the particles with diameters in the range 0.01-50 mu m by the k-epsilon and RSM models and compared to the deposition velocities calculated from semi-empirical correlations to investigate the effect of the turbulence model on the deposition velocity. Results show that the proposed numerical model can predict deposition velocity of micro-particles in water accurately and can be useful in determining the range of particle diameters in which the highest deposition velocity occurs. However, for nano-particles, the model's results do not agree with the correlations due to the higher lateral turbulence fluctuations calculated by ANSYS FLUENT (TM) code. The proposed model can be useful for predicting fouling in industrial heat exchangers, for planning operations and cleaning schedules, and proposing efficient filtering processes for lowering deposition rate and cleaning costs.
引用
收藏
页码:171 / 179
页数:9
相关论文
共 50 条
  • [1] Thermophoretic deposition of small particles in a direct numerical simulation of turbulent channel flow
    Thakurta, DG
    Chen, M
    McLaughlin, JB
    Kontomaris, K
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1998, 41 (24) : 4167 - 4182
  • [2] Wall deposition of small suspended particles in a turbulent channel flow
    Abuzeid, Salem
    Busnaina, Ahmed A.
    Ahmadi, Goodarz
    Particulate Science and Technology, 1992, 10 (3-4)
  • [3] Dispersion and deposition mechanisms of particles suspended in a turbulent plane Couette flow
    Hosseiniebalam, Fahimeh
    Hassanzadeh, Smaeyl
    Ghaffarpasand, Omid
    APPLIED MATHEMATICAL MODELLING, 2013, 37 (04) : 2417 - 2429
  • [4] Direct numerical simulation of polydisperse aerosol particles deposition in low Reynolds number turbulent flow
    Li, Yu
    Gu, Weiguo
    Wang, Dezhong
    He, Jinpeng
    ANNALS OF NUCLEAR ENERGY, 2018, 121 : 223 - 231
  • [5] Direct numerical simulation of pollutant adsorption by charged inertial spheroidal particles suspended in a homogeneous isotropic turbulent flow
    Motamedi, Ehsan
    Moosaie, Amin
    Rahmani, Behrooz
    PHYSICS OF FLUIDS, 2025, 37 (04)
  • [6] NUMERICAL-SIMULATION OF PARTICLES BEHAVIOR IN A TURBULENT-FLOW
    ORMANCEY, A
    MARTINON, J
    RECHERCHE AEROSPATIALE, 1983, (05): : 353 - 362
  • [7] Direct numerical simulation of ellipsoidal particles in turbulent channel flow
    F. Zhao
    B. G. M. van Wachem
    Acta Mechanica, 2013, 224 : 2331 - 2358
  • [8] Direct numerical simulation of ellipsoidal particles in turbulent channel flow
    Zhao, F.
    van Wachem, B. G. M.
    ACTA MECHANICA, 2013, 224 (10) : 2331 - 2358
  • [9] Numerical Simulation of Turbulent Pipe Flow for Water Hammer
    Shamloo, Hamid
    Mousavifard, Maryam
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2015, 137 (11):
  • [10] Direct Numerical Simulation of Water Droplets in Turbulent Flow
    Ren, Weibo
    Reutzsch, Jonathan
    Weigand, Bernhard
    FLUIDS, 2020, 5 (03)