Numerical simulation study of acoustic waves propagation and streaming using MRT-lattice Boltzmann method

被引:4
|
作者
Benhamou, Jaouad [1 ]
Jami, Mohammed [1 ]
Mezrhab, Ahmed [1 ]
Henry, Daniel [2 ]
Botton, Valery [2 ]
机构
[1] Univ Mohammed Premier, Fac Sci, Lab Mecan & Energet, Oujda 60000, Morocco
[2] Univ Lyon 1, Univ Lyon, Lab Mecan Fluides & Acoust, Ecole Cent Lyon,INSA Lyon,ECL,CNRS, Ecully, France
关键词
Acoustic waves; acoustic streaming; lattice Boltzmann method; acoustic force; acoustic point source; CHARACTERISTIC BOUNDARY-CONDITIONS; FLUID; MODEL; CONVECTION; EQUATION; SCHEMES; FLOWS;
D O I
10.1080/15502287.2022.2050844
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
This paper presents a numerical investigation of the propagation of acoustic waves generated by a linear acoustic source using the lattice Boltzmann method (LBM). The main objective of this study is to compute the sound pressure and acoustic force produced by a rectangular sound source located at the center of the west wall of a rectangular cavity, filled with water. The sound source is discretized into a set of point sources emitting waves according to the acoustic point source method. The interference between the generated cylindrical waves creates an acoustic beam in the cavity. An analytical study is carried out to validate these numerical results. The error between the numerical and analytical calculations of the wave propagation is also discussed to confirm the validity of the numerical approach. In a second step, the acoustic streaming is calculated by introducing the acoustic force into the LBM code. A characteristic flow structure with two recirculating cells is thus obtained.
引用
收藏
页码:62 / 75
页数:14
相关论文
共 50 条
  • [1] Numerical study of natural convection and acoustic waves using the lattice Boltzmann method
    Benhamou, Jaouad
    Jami, Mohammed
    Mezrhab, Ahmed
    Botton, Valery
    Henry, Daniel
    HEAT TRANSFER, 2020, 49 (06) : 3779 - 3796
  • [2] Numerical analysis of the lattice Boltzmann method for simulation of linear acoustic waves
    Dhuri, Dattaraj B.
    Hanasoge, Shravan M.
    Perlekar, Prasad
    Robertsson, Johan O. A.
    PHYSICAL REVIEW E, 2017, 95 (04)
  • [3] Direct numerical simulations of the decaying turbulence in rotating flows via the MRT-lattice Boltzmann method
    Nie, Deming
    Lin, Jianzhong
    Qiu, Limin
    INTERNATIONAL JOURNAL OF COMPUTATIONAL FLUID DYNAMICS, 2013, 27 (03) : 173 - 183
  • [4] The use of MRT-lattice Boltzmann method for the prediction of fluid solid flow
    Sidik, Nor Azwadi Che
    Khan, Aman Ali
    Kermani, Emad
    Manshor, Akmal Hamizi
    Jahanshaloo, Leila
    2ND INTERNATIONAL CONFERENCE ON MECHANICAL ENGINEERING RESEARCH (ICMER 2013), 2013, 50
  • [5] DOUBLE MRT-LATTICE BOLTZMANN SIMULATION OF NATURAL CONVECTION MELTING IN A RECTANGULAR CAVITY
    Feng, Yongchang
    Li, Huixiong
    Cheng, Can
    PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE - 2013, VOL 2, 2014,
  • [6] Numerical investigation of natural convection in concentric cylinder partially heated based on MRT-lattice Boltzmann method
    Farkach, Younes
    Derfoufi, Soufiane
    Ahachad, Mohammed
    Bahraoui, Fatima
    Mahdaoui, Mustapha
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2022, 132
  • [7] MRT-Lattice Boltzmann simulation of forced convection in a plane channel with an inclined square cylinder
    Moussaoui, M. A.
    Jami, M.
    Mezrhab, A.
    Naji, H.
    INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2010, 49 (01) : 131 - 142
  • [8] Power-law fluid flow in driven enclosures with undulation using MRT-lattice Boltzmann method
    Bisht, Manju
    Patil, Dhiraj, V
    COMPUTERS & MATHEMATICS WITH APPLICATIONS, 2020, 79 (01) : 100 - 110
  • [9] A Simplified Linearized Lattice Boltzmann Method for Acoustic Propagation Simulation
    Song, Qiaochu
    Chen, Rongqian
    Cao, Shuqi
    Lou, Jinhua
    Zhan, Ningyu
    You, Yancheng
    ENTROPY, 2022, 24 (11)
  • [10] Numerical simulation of the ion-acoustic solitary waves in plasma based on lattice Boltzmann method
    Wang, Huimin
    ADVANCES IN SPACE RESEARCH, 2015, 56 (06) : 1161 - 1168