EI、Scopus 收录
中文核心期刊

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

含气泡油滴撞击油膜壁面时气泡的变形与破裂

周剑宏 童宝宏 王伟 苏家磊

周剑宏, 童宝宏, 王伟, 苏家磊. 含气泡油滴撞击油膜壁面时气泡的变形与破裂[J]. 力学学报, 2018, 50(2): 427-437. doi: 10.6052/0459-1879-17-405
引用本文: 周剑宏, 童宝宏, 王伟, 苏家磊. 含气泡油滴撞击油膜壁面时气泡的变形与破裂[J]. 力学学报, 2018, 50(2): 427-437. doi: 10.6052/0459-1879-17-405
Zhou Jianhong, Tong Baohong, Wang Wei, Su Jialei. DEFORMATION AND RUPTURE OF BUBBLE WHEN THE HOLLOW DROPLET IMPACTS ON THE OIL FILM[J]. Chinese Journal of Theoretical and Applied Mechanics, 2018, 50(2): 427-437. doi: 10.6052/0459-1879-17-405
Citation: Zhou Jianhong, Tong Baohong, Wang Wei, Su Jialei. DEFORMATION AND RUPTURE OF BUBBLE WHEN THE HOLLOW DROPLET IMPACTS ON THE OIL FILM[J]. Chinese Journal of Theoretical and Applied Mechanics, 2018, 50(2): 427-437. doi: 10.6052/0459-1879-17-405

含气泡油滴撞击油膜壁面时气泡的变形与破裂

doi: 10.6052/0459-1879-17-405
基金项目: 国家自然科学基金(51475135), 清华大学摩擦学国家重点实验室开放基金 (SKLTKF17B01)和安徽工业大学研究生创新基金(2015040)资助项目.
详细信息
    作者简介:

    null

    作者简介:童宝宏,教授,主要研究方向:流体流动与润滑力学、现代机械设计理论与方法. E-mail:bhtong@ahut.edu.cn

  • 中图分类号: O359;

DEFORMATION AND RUPTURE OF BUBBLE WHEN THE HOLLOW DROPLET IMPACTS ON THE OIL FILM

  • 摘要: 油--气润滑过程中润滑油液滴受高速气流扰动易形成含气泡油滴,微气泡将对油滴撞击壁面时的运动过程以及壁面油膜 层的形成质量产生重要影响. 基于耦合的水平集--体积分数 方法,对含气泡油滴撞击油膜壁面行为进行数值模拟研究, 考察含气泡油滴撞击油膜壁面时气泡的变形运动过程,探讨气泡破裂的动力学机制,分析气泡大小、碰撞速度和液体黏度等因素对含气 泡油滴撞壁过程中气泡变形特征参数的影响规律. 研究表明:含气泡油滴撞击油膜壁面后气泡会发生变形,并破裂形成膜液滴;气泡随同 液滴运动过程中,气泡内外压力和速度梯度变化是使气泡发生破裂的主要诱因. 气泡大小对气泡破裂方式影响较大,气泡较小时发生单 点破裂,而气泡较大时更容易发生多处破裂. 不同大小气泡受力差异较大,气泡大小与破裂发生时刻没有明显相关性. 碰撞速度和液体 黏度对气泡的变形、破裂和破裂发生时刻都具有一定的影响. 碰撞速度越大,油滴动能越大,更容易产生气泡变形和破裂现象. 液体黏 度增大,在油滴撞壁运动前期促进气泡变形,而在运动后期可以阻延气泡破裂行为发生.

     

  • [1] 王建文,安琦. 油气润滑输送中两相流的形成. 华东理工大学学报:自然科学版, 2009, 35(2): 324-327
    [1] (Wang Jianwen, An Qi.Investigation of two-phase flow regimes in transport pipe in oil-air lubrication system. Journal of East China University of Science and Technology ( Natural Science Edition), 2009, 35(2): 324-327 (in Chinese))
    [2] Roisman IV, Tropea C.Impact of a drop onto a wetted wall: Description of crown formation and Propagation. Journal of Fluid Mechanics, 2002, 472(472): 373-397
    [3] Okawa T, Shiraishi T, Mori T.Production of secondary drops during the single water drop impact onto a plane water surface. Experiments in Fluids, 2006, 41(6): 965-974
    [4] 郭加宏, 戴世强, 代钦. 液滴冲击液膜过程实验研究. 物理学报, 2010, 59(4): 2601-2609
    [4] (Guo Jiahong, Dai Shiqiang, Dai Qin.Experimental research on the droplet impacting on the liquid film. Acta Physica Sinica, 2010, 59(4): 2601-2609 (in Chinese))
    [5] 宋云超, 宁智, 孙春华等. 液滴撞击湿润壁面的运动形态及飞溅运动机制.力学学报, 2013, 45(6): 833-842
    [5] (Song Yunchao, Ning Zhi, Sun Chunhua, et al.Movement and splashing of a droplet impacting on a wet wall. Chinese Journal of Theoretical and Applied Mechanics, 2013, 45(6): 833-842 (in Chinese))
    [6] Guo YL, Wei L, Liang GT, et al.Simulation of droplet impact on liquid film with CLSVOF. International Communications in Heat and Mass Transfer, 2014, 53(53): 26-33
    [7] 柴敏, 陈松, 邵长孝等. 单液滴撞击液膜的颈部射流模拟及机理分析. 工程热物理学报, 2016, 37(8): 1669-1675
    [7] (Chai Min, Chen Song, Shao Changxiao, et al.DNS analysis of neck jetting flow dynamics after single drop impacting onto a preexisting liquid film. Journal of Engineering Thermophysics, 2016, 37(8): 1669-1675 (in Chinese))
    [8] 黄虎, 洪宁, 梁宏等. 液滴撞击液膜过程的格子Boltzmann方法模拟. 物理学报, 2016, 65(8): 244-255
    [8] (Huang Hu, Hong Ning, Liang Hong, et al.Lattice Boltzmann simulation of the droplet impact onto liquid film. Acta Physica Sinica, 2016, 65(8): 244-255 (in Chinese))
    [9] Cherepanov AN, Solonenko OP, Bublik VV.Numerical and analytic investigation of the dynamics of hollow droplet impact onto substrate. Thermophysics & Aeromechanics, 2008, 15(4): 631-641
    [10] Gulyaev IP, Solonenko OP, Gulyaev PY, et al.Hydrodynamic features of the impact of a hollow spherical drop on a flat surface. Technical Physics Letters, 2009, 35(10): 885-888
    [11] Gulyaev IP, Solonenko OP.Hollow droplets impacting onto a solid surface. Experiments in Fluids, 2013, 54(1): 1432-1443
    [12] Kumar A, Gu S, Kamnis S.Simulation of impact of a hollow droplet on a flat surface. Applied Physics A, 2012, 109(1): 101-109
    [13] Safaei H, Emami MD, Jazi HS, et al.Application of compressible volume of fluid model in simulating the impact and solidification of hollow spherical ZrO2Droplet on a Surface.Journal of Thermal Spray Technology, 2017(5-6): 1-23
    [14] Sussman M, Puckett EG.A coupled level set and volume-of-fluid method for computing 3D and axisymmetric incompressible two-phase flows. Journal of Computational Physics, 2000, 162(2): 301-307
    [15] Ray B, Biswas G, Sharma A.Generation of secondary droplets in coalescence of a drop at a liquidâ liquid interface. Journal of Fluid Mechanics, 2010, 655(655): 72-104
    [16] Bahni R, Gautam B, Ashutosh S.Regimes during liquid drop impact on a liquid pool. Journal of Fluid Mechanics, 2015, 768: 492-523
    [17] 王茜茜. 基于CLSVOF模型的气泡动力学特性研究. [硕士论文]. 长沙:中南大学, 2014
    [17] (Wang Qianqian.Study of bubble dynamic characteristics based on CLSVOF model. [Master Thesis]. Changsha: Central South University, 2014 (in Chinese))
    [18] Wang Z, Li Y, Huang B, et al.Numerical investigation on the influence of surface tension and viscous force on the bubble dynamics with a CLSVOF method. Journal of Mechanical Science & Technology, 2016, 30(6): 2547-2556
    [19] Ohta M, Kikuchi D, Yoshida Y, et al.Robust numerical analysis of the dynamic bubble formation process in a viscous liquid. International Journal of Multiphase Flow, 2011, 37(9): 1059-1071
    [20] Fan W, Qi T, Sun Y, et al.Coalescence deformation of bubble pairs generated from twin nozzles in CMC solutions. Chemical Engineering & Technology, 2016, 39(10): 1895-1902
    [21] Brackbill JU, Kothe DB, Zemach C.A continuum method for modeling surface tension. Journal of Computational Physics, 1992, 100(2): 335-354
    [22] 吕明, 宁智, 孙春华. 单液滴内空化气泡的生长及溃灭研究. 力学学报, 2016, 48(4): 857-866
    [22] (Lü Ming, Ning Zhi, Sun Chunhua.Study on the growth and collapse of cavitation bubble within a droplet. Chinese Journal of Theoretical and Applied Mechanics, 2016, 48(4): 857-866 (in Chinese))
    [23] Ni BY, Zhang AM, Wu GX.Simulation of a fully submerged bubble bursting through a free surface. European Journal of Mechanics-B/Fluids, 2016, 55(4): 1-14
    [24] 马超, 薄涵亮. 气泡破裂产生膜液滴理论模型的建立与验证. 原子能科学技术, 2015, 49(11): 2036-2043
    [24] (Ma Chao, Bo Hanliang.Establishment and verification of theoretical model of film drops produced by bubble bursting. Atomic Energy Science and Technology, 2015, 49(11): 2036-2043 (in Chinese))
    [25] Knelman F, Dombrowski N, Newitt DM.Mechanism of the bursting of bubbles. Nature, 1954, 173(4397): 261-261
    [26] Spiel DE.A hypothesis concerning the peak in film drop production as a function of bubble size. Journal of Geophysical Research Oceans, 1997, 102(C1): 1153-1161
    [27] Feonychev AI.Stability of thermocapillary convection and regimes of a fluid flow acted upon by a standing surface wave. Journal of Engineering Physics & Thermophysics, 2007, 80(5): 961-969
    [28] Shinjo J, Umemura A.Simulation of liquid jet primary breakup: Dynamics of ligament and droplet formation. International Journal of Multiphase Flow, 2010, 36(7): 513-532
    [29] Canedo EL, Favelukis M, Tadmor Z, et al.An experimental study of bubble deformation in viscous liquids in simple shear flow. Aiche Journal, 1993, 39(4): 553-559
  • 加载中
计量
  • 文章访问数:  1228
  • HTML全文浏览量:  163
  • PDF下载量:  347
  • 被引次数: 0
出版历程
  • 收稿日期:  2017-12-06
  • 刊出日期:  2018-03-18

目录

    /

    返回文章
    返回