Numerical Investigation of Droplet Impact on the Surface by Multiphase Lattice Boltzmann Flux Solver

被引:0
|
作者
Bian, Qingyong [1 ,2 ]
Shu, Chang [3 ]
Zhao, Ning [1 ,2 ]
Zhu, Chengxiang [1 ,2 ]
Zhu, Chunling [1 ,2 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, Coll Aerosp Engn, Nanjing 210016, Jiangsu, Peoples R China
[2] Nanjing Univ Aeronaut & Astronaut, State Key Lab Mech & Control Mech Struct, Nanjing 210016, Jiangsu, Peoples R China
[3] Natl Univ Singapore, Dept Mech Engn, Singapore 119260, Singapore
基金
中国国家自然科学基金;
关键词
Lattice Boltzmann method; Large density ratio; Droplet impact; Rebound and adhesion; FLOWS;
D O I
10.1007/978-981-19-2689-1_52
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The dynamic behaviors of the micro-sized water droplet collision onto the wings of the aircraft are essential to the flight safety. The details on the small droplet in the airflow in contact with the aircraft wing surface play a quite important role in the ice accretion process. In this paper, multiphase lattice Boltzmann flux solver coupled with phase field method is applied to simulate the water droplet impact onto the solid hydrophilic/hydrophobic surface to further understand the interactions between droplet and surface at mesoscopic level. The reliability and accuracy of the numerical method is validated by the comparison with experimental data and computational results in other literatures, which shows that the solver is capable of predicting the droplet dynamic behaviors. Then, the effects of different physical parameters such as impact velocity, droplet diameter, surface contact angle and impact inclination angle, are systematically studied. The computational results reveal that when the collision is normal to the surface, the water droplet may experience spreading phase, recoiling phase as well as rebounding phase and finally shows the adhesion state or detachment from the surface. The higher velocity and larger diameter contribute to spread the droplet wider and jump higher during the droplet impact process. And a shorter physical time is taken to reach the spreading factor maximum for higher velocity while it is opposite for the droplet with a lager diameter. Moreover, the whole evolutionary process of smaller-sized droplet is accelerated and smaller diameter as well as higher contact angle of the surface advances the droplet detachment from the hydrophobic surface. It is also found that the surface with higher contact angle impedes the droplet spreading and removes the temporal lag of its performance in lifting up the upper end of droplet during recoiling phase and rebounding phase, which is distinct to the results of higher velocity and larger diameter. Besides this, droplet impact with an inclination angle causes reduction on the spreading factor maximum and jump height after detachment from the surface due to the decrease on the normal velocity of the droplet. And the increase of the tangential velocity accounts for the longer contact time with the surface for the droplet, and causes the difference of the spreading factors in spreading directions, which forms an oval contact area on the surface until the droplet detaches. The analysis and quantitative comparison of the temporal morphology evolutions of the micro-sized droplet in this paper help to reveal the interaction mechanism between the different-sized droplets and surfaces with different properties, which can be considered specially in the numerical prediction of the aircraft icing.
引用
收藏
页码:671 / 684
页数:14
相关论文
共 50 条
  • [41] Numerical simulation of droplet evaporation in three-component multiphase flows using lattice Boltzmann method
    Latifiyan, Navid
    Rahimian, Mohammad Hassan
    Haghani-Hassan-Abadi, Reza
    Ashna, Mostafa
    Jafari, Azadeh
    ACTA MECHANICA, 2022, 233 (11) : 4817 - 4849
  • [42] Numerical simulation of droplet evaporation in three-component multiphase flows using lattice Boltzmann method
    Navid Latifiyan
    Mohammad Hassan Rahimian
    Reza Haghani-Hassan-Abadi
    Mostafa Ashna
    Azadeh Jafari
    Acta Mechanica, 2022, 233 : 4817 - 4849
  • [43] Numerical study of gravity-driven droplet displacement on a surface using the pseudopotential multiphase lattice Boltzmann model with high density ratio
    Son, Soyoun
    Chen, Li
    Derome, Dominique
    Carmeliet, Jan
    COMPUTERS & FLUIDS, 2015, 117 : 42 - 53
  • [44] Development of an immersed boundary-multiphase lattice Boltzmann flux solver with high density ratio for contact line dynamics
    Chen, Guo-Qing
    Zhang, A-Man
    Liu, Nian-Nian
    Wang, Yan
    PHYSICS OF FLUIDS, 2021, 33 (05)
  • [45] Numerical investigation of flow characteristics around two side-by-side cylinders by immersed boundary-lattice Boltzmann flux solver
    Wu, Xiao-di
    Liu, Hua-ping
    Chen, Fu
    JOURNAL OF ZHEJIANG UNIVERSITY-SCIENCE A, 2018, 19 (05): : 384 - 398
  • [46] A numerical study for WENO scheme-based on different lattice Boltzmann flux solver for compressible flows
    Li, You
    Niu, Xiao-Dong
    Yuan, Hai-Zhuan
    Khan, Adnan
    Li, Xiang
    ACTA MECHANICA SINICA, 2018, 34 (06) : 995 - 1014
  • [47] A numerical study for WENO scheme-based on different lattice Boltzmann flux solver for compressible flows
    You Li
    Xiao-Dong Niu
    Hai-Zhuan Yuan
    Xiang Adnan Khan
    Acta Mechanica Sinica, 2018, 34 : 995 - 1014
  • [48] An efficient numerical algorithm based on the lattice Boltzmann flux solver for trans-media hydrodynamic problems
    Lu, Yunpeng
    Zhang, Guiyong
    Yan, Haoran
    Wang, Heng
    Yang, Xi
    Sun, Tiezhi
    OCEAN ENGINEERING, 2025, 318
  • [49] Thermohydrodynamics of an evaporating droplet studied using a multiphase lattice Boltzmann method
    Zarghami, Ahad
    Van den Akker, Harry E. A.
    PHYSICAL REVIEW E, 2017, 95 (04)
  • [50] Binary droplet collision simulations by a multiphase cascaded lattice Boltzmann method
    Lycett-Brown, Daniel
    Luo, Kai H.
    Liu, Ronghou
    Lv, Pengmei
    PHYSICS OF FLUIDS, 2014, 26 (02)