Visualization of acoustic particle interaction and agglomeration: Theory evaluation

被引:44
|
作者
Hoffmann, TL [1 ]
Koopmann, GH [1 ]
机构
[1] PENN STATE UNIV,CTR ACOUST & VIBRAT,UNIVERSITY PK,PA 16802
来源
关键词
D O I
10.1121/1.418352
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
In this paper experimentally observed trajectories of particles undergoing acoustically induced interaction and agglomeration processes are compared to and validated with numerically generated trajectories based on existing agglomeration theories. Models for orthokinetic, scattering, mutual radiation pressure, and hydrodynamic particle interaction are considered in the analysis. The characteristic features of the classical orthokinetic agglomeration hypothesis, such as collision processes and agglomerations due to the relative entrainment motion, are not observed in the digital images. The measured entrainment rates of the particles are found to be consistently lower than the theoretically predicted values. Some of the experiments reveal certain characteristics which may possibly be related to mutual scattering interaction. The study's most significant discovery is the so-called tuning fork agglomeration [T. L. Hoffmann and G. H. Koopmann, J. Acoust. Sec. Am. 99, 2130-2141 (1996)]. It is shown that this phenomenon contradicts the theories for mutual scattering interaction and mutual radiation pressure interaction, but agrees with the acoustic wake effect model in its intrinsic feature of attraction between particles aligned along the acoustic axis. A model by Dianov et al. [Sov. Phys. Acoust. 13 (3), 314-319 (1968)] is used to describe this effect based on asymmetric flow fields around particles under Oseen flow conditions. It is concluded that this model is consistent with the general characteristics of the tuning fork agglomerations, but lacks certain refinements with respect to accurate quantification of the effect. (C) 1997 Acoustical Society of America.
引用
收藏
页码:3421 / 3429
页数:9
相关论文
共 50 条
  • [1] Visualization of acoustic particle interaction and agglomeration: Theory and experiments
    Hoffmann, TL
    Koopmann, GH
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1996, 99 (04): : 2130 - 2141
  • [2] Visualization of acoustic particle interaction and agglomeration: Theory and experiments
    Hoffmann, Thomas L.
    Koopmann, Gary H.
    Journal of the Acoustical Society of America, 1996, 99 (4 pt 1):
  • [3] A NEW TECHNIQUE FOR VISUALIZATION OF ACOUSTIC PARTICLE AGGLOMERATION
    HOFFMANN, TL
    KOOPMANN, GH
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1994, 65 (05): : 1527 - 1536
  • [4] ACOUSTIC PARTICLE AGGLOMERATION DUE TO HYDRODYNAMIC INTERACTION BETWEEN MONODISPERSE AEROSOLS
    SHAW, DT
    TU, KW
    JOURNAL OF AEROSOL SCIENCE, 1979, 10 (03) : 317 - &
  • [5] EXPERIMENTAL-STUDY OF ACOUSTIC PARTICLE AGGLOMERATION
    BOULAUD, D
    FRAMBOURT, C
    MADELAINE, G
    MALHERBE, C
    AEROSOL SCIENCE AND TECHNOLOGY, 1983, 2 (02) : 206 - 206
  • [6] A computational investigation of particle acoustic agglomeration in a resonance tube
    Liu, Jizhou
    Li, Xiaodong
    POWDER TECHNOLOGY, 2020, 374 : 82 - 94
  • [7] Influence of Acoustic Streams on the Efficiency of Ultrasonic Particle Agglomeration
    Khmelev, Vladimir Nikolaevich
    Shalunov, Andrey Victorovich
    Nesterov, Viktor Aleksandrovich
    Terentiev, Sergey Aleksandrovich
    APPLIED SCIENCES-BASEL, 2024, 14 (02):
  • [8] Numerical particle-based analysis of the effects responsible for acoustic particle agglomeration
    Markauskas, D.
    Kacianauskas, R.
    Maknickas, A.
    ADVANCED POWDER TECHNOLOGY, 2015, 26 (03) : 698 - 704
  • [9] Simulation of acoustic particle agglomeration in poly-dispersed aerosols
    Markauskas, Darius
    Maknickas, Algirdas
    Kacianauskas, Rimantas
    NEW PARADIGM OF PARTICLE SCIENCE AND TECHNOLOGY, PROCEEDINGS OF THE 7TH WORLD CONGRESS ON PARTICLE TECHNOLOGY, 2015, 102 : 1218 - 1225
  • [10] Modeling and experimental study on acoustic agglomeration for dust particle removal
    Zu, K.
    Yao, Y.
    Cai, M.
    Zhao, F.
    Cheng, D. L.
    JOURNAL OF AEROSOL SCIENCE, 2017, 114 : 62 - 76