Near-Wall Settling Behavior of a Particle in Stratified Fluids

被引:0
|
作者
Dai, Minglu [1 ]
Tu, Chengxu [1 ]
Du, Pengfei [1 ]
Kuang, Zhongke [1 ]
Shan, Jiaming [1 ]
Wang, Xu [1 ]
Bao, Fubing [1 ]
机构
[1] China Jiliang Univ, Zhejiang Prov Key Lab Flow Measurement Technol, Hangzhou 310018, Peoples R China
基金
中国国家自然科学基金;
关键词
particle sedimentation; near-wall sedimentation; stratified fluid; shear-thinning fluid; VERTICAL WALL; SPHERE PARALLEL; REYNOLDS-NUMBER; PLANE WALL; SEDIMENTATION; DRAG; FLOW; BUBBLES; VELOCITIES; DEPOSITION;
D O I
10.3390/mi13122070
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The phenomenon of near-wall particle settling in a stratified fluid is an emerging topic in the field of multiphase flow, and it is also widely found in nature and engineering applications. In stratified fluids, particle settling characteristics are affected by the physical and chemical properties of the upper and lower fluids, the particle size, the particle density, and the initial sedimentation conditions. In this study, the main objective is to determine the effect of liquid viscosity and particle density on the detaching process, and the trajectory and velocity of near-wall settling particles in stratified fluids. The inertia and velocity of the particle had a greater impact on the tail pinch-off model in low-viscosity lower fluids; that is, the lower the inertia and velocity, the more apparent the order between deep and shallow seal pinch-off. In comparison, in high-viscosity lower fluids, the tail pinch-off models of different inertia and velocity particles were similar. In terms of particle trajectory, the transverse motion of the particle in the low-viscosity lower fluid exhibited abrupt changes; that is, the particles moved away from the wall suddenly, whereas in the high-viscosity lower fluid, the transverse movement was gradual. Due to the existence of the wall, the transverse motion direction of the free settling particles in the stratified fluid, which is determined by the rotation direction of the particles, changed to a direction away from the wall regardless of the particle rotation direction. This transverse movement also caused the particle settling velocity to drop suddenly or its rising rate to decrease, this is because part of the energy was used for transverse motion and to increase the transverse velocity. In our study, the near-wall settling of particles in a stratified fluid mainly affected the particle trajectory; that is, forced movement away from the wall, thus changing the particle velocity. This characteristic provides a new approach to manipulate particles away from the wall.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] On the role of gravity and shear on inertial particle accelerations in near-wall turbulence
    Lavezzo, V.
    Soldati, A.
    Gerashchenko, S.
    Warhaft, Z.
    Collins, L. R.
    JOURNAL OF FLUID MECHANICS, 2010, 658 : 229 - 246
  • [32] An experimental study on particle deposition above near-wall heat source
    Chen, Xi
    Li, Angui
    BUILDING AND ENVIRONMENT, 2014, 81 : 139 - 149
  • [33] Theory of the near-wall conductivity
    Morozov, AI
    Savel'ev, VV
    PLASMA PHYSICS REPORTS, 2001, 27 (07) : 570 - 575
  • [34] ON THE DYNAMICS OF NEAR-WALL TURBULENCE
    SMITH, CR
    WALKER, JDA
    HAIDARI, AH
    SOBRUN, U
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1991, 336 (1641): : 131 - 175
  • [35] A MODEL FOR NEAR-WALL TURBULENCE
    HARITONIDIS, JH
    PHYSICS OF FLUIDS A-FLUID DYNAMICS, 1989, 1 (02): : 302 - 306
  • [36] Theory of the near-wall conductivity
    A. I. Morozov
    V. V. Savel'ev
    Plasma Physics Reports, 2001, 27 : 570 - 575
  • [37] Predicting the near-wall velocity of wall turbulence using a neural network for particle image velocimetry
    Wang, Hongping
    Yang, Zixuan
    Li, Binglin
    Wang, Shizhao
    PHYSICS OF FLUIDS, 2020, 32 (11)
  • [38] Experimental Study of Particle Deposition Distribution on the Vertical Wall Behind Near-Wall Heat Sources
    Chen, Xi
    Xia, Jialing
    Li, Jiangyi
    Yang, Liu
    Liu, Yang
    Zhang, Hao
    AEROSOL SCIENCE AND ENGINEERING, 2024,
  • [39] Near-Wall Measurements and Wall Shear Stress
    Johansson, T. Gunnar
    PROGRESS IN WALL TURBULENCE: UNDERSTANDING AND MODELING, 2011, 14 : 377 - 384
  • [40] INVESTIGATIONS OF NEAR-WALL BUBBLE BEHAVIOR IN WIRE HEATERS POOL BOILING
    Guo, Kailun
    Wang, Chenglong
    Zhang, Dalin
    Tian, Wenxi
    Su, Guanghui
    Qiu, Suizheng
    THERMAL SCIENCE, 2021, 25 (05): : 3957 - 3967