西安交通大学动力工程多相流国家重点实验室,西安,710049
网络首发:2013-07-10,
纸质出版:2013
移动端阅览
王太, 李会雄, 李阳. 同轴两个气泡融合特性的数值研究[J]. 西安交通大学学报, 2013,47(7):1-6.
Numerical Investigation on Coaxial Coalescence of Two Gas Bubbles[J]. 2013, 47(7): 1-6.
王太, 李会雄, 李阳. 同轴两个气泡融合特性的数值研究[J]. 西安交通大学学报, 2013,47(7):1-6. DOI: 10.7652/xjtuxb201307001.
Numerical Investigation on Coaxial Coalescence of Two Gas Bubbles[J]. 2013, 47(7): 1-6. DOI: 10.7652/xjtuxb201307001.
为了进一步研究气泡融合特性以及开发高效的界面追踪程序
以PLIC界面重构技术为基础
采用不分裂算法计算了目标网格向周围26个网格的输运流量; 采用统一的表达式计算输运流量
大大降低了程序编写的难度。将PLIC算法与气液两相流动控制方程相结合
数值计算了直径为0.8~14 mm的单个气泡的最终运动速度
模拟结果与文献中的实验结果吻合良好。研究了同轴两个气泡的融合过程
发现表面张力很大时
两个气泡近似独立运动
不发生融合; 表面张力很小时
气泡容易发生破碎; 气泡发生严重破碎时
尾部气泡会从顶部气泡的轴心穿过; 液体黏度与表面张力对气泡融合时间的影响不是单调的。
To further study bubble coalescence and develop a highly efficient tracking interface program
an unsplit algorithm based on the PLIC interface reconstruction algorithm was applied to precisely calculate the fluid transport from one cell to its neighboring 26 cells
and the fluid transport of each cell was calculated using a unified expression which greatly reduces the programming difficulty and improves the calculation accuracy. The Navier-Stokes equations for gas-liquid two-phase flow were solved by combining an advection equation for liquid volume fraction to simulate the rise of the single bubble. The terminal velocities obtained by the numerical simulation for the single bubble with the diameter of 0.8-14 mm were in good agreement with the experimental data from literature. The co-axial coalescence of two gas bubbles in the initially quiescent liquid was then simulated by the unsplit algorithm. The numerical results show that when the surface tension is very high
the two bubbles rise and deform independently. The bubbles tend to break up when the surface tension is very small
and when the bubble breakup is serious
the following bubble would pass through the leading bubble. Additionally
the effect of liquid viscosity and surface tension on coalescence time is non-monotonous.
WU M M, GHARIB M. Experimental studies on the shape and path of small air bubbles rising in clean water [J]. Physics of Fluids, 2002, 14(7): 49-52.
何丹, 李彦鹏, 刘艳艳. 初始形状对浮升气泡动力特性的影响 [J]. 西安交通大学学报, 2011, 45(1): 43-47.
HE Dan, LI Yanpeng, LIU Yanyan. Effect of initial bubble shape on dynamics of a buoyancy-driven bubble [J]. Journal of Xi'an Jiaotong University, 2011, 45(1): 43-47.
INAMURO T, OGATA T, OGINO F. Numerical simulation of bubble flows by the lattice Boltzmann method [J]. FGCS, 2004, 20(6): 959-964.
YU Z, FAN L S. Direct simulation of the buoyant rise of bubbles in infinite liquid using level set method [J]. Canadian Journal of Chemical Engineering, 2008, 86(6): 267-275.
VAN SINT ANNALAND M, DEEN N G, KUIPERS J A M. Numerical simulation of gas bubbles behaviors using a three-dimensional volume of fluid method [J]. Chemical Engineering Science, 2005, 60(11): 2999-3011.
PU L, LI H X, LV X. Numerical simulation of bubble dynamics in microgravity [J]. Microgravity Sci Technol, 2008, 20(3/4): 247-251.
李彦鹏, 张乾隆, 白博峰. 竖直通道内相邻气泡对上升的直接数值模拟 [J]. 热能动力工程, 2007, 22(4): 375-379.
LI Yanpeng, ZHANG Qianlong, BAI Bofeng. Direct simulation of the rise of a bubble pair in a vertical channel [J]. Journal of Engineering for Thermal Energy and Power, 2007, 22(4): 375-379.
KOEBE M, BOTHE D, PRUESS J, et al. 3D direct numerical simulation of air bubbles in water at high Reynolds number [C]∥Proceeding of the 2002 ASME Fluids Engineering Division Summer Meeting. New York, USA: ASME, 2002: 14-18.
胡影影, 朱克勤, 席葆树. 计算体积分数函数的Youngs不分裂算法 [J]. 清华大学学报: 自然科学版, 2002, 42(2): 232-234.
HU Yingying, ZHU Keqin, XI Baoshu. Unsplit Youngs' algorithm for the fractional volume function [J]. J Tsinghua Univ: Sci Tech, 2002, 42(2): 232-234.
刘春, 马天宝, 宁建国. Euler方法中的不分裂输运算法 [J]. 北京理工大学学报, 2008, 28(10): 847-850.
LIU Chun, MA Tianbao, NING Jianguo. Unsplit transport method in Eulerian method [J]. Transactions of Beijing Institute of Technology, 2008, 28(10): 847-850.
CLIFT R, GRACE J R, WEBER M E. Bubbles, drops and particles [M]. New York, USA: Academic Press, 1978.
JUNE K M, IL S P. Numerical study for laminar wavy motions of liquid film flow on vertical wall [J]. International Journal of Heat and Mass Transfer, 2011, 54(15/16): 3256-3266.
LORSTAD D, FUCHS L. High-order surface tension VOF-model for 3D bubble flows with high density ratio [J]. Journal of Computational Physics, 2004, 200(1): 153-176.
MENARD T, TANGUY S, BERLEMONT A. Coupling level set/VOF/ghost fluid methods: validation and application to 3D simulation of the primary break-up of a liquid jet [J]. International Journal of Multiphase Flow, 2007, 33(5): 510-524.
PASSANDIDEH-FARD M, FARHANGI M M. A numerical study on bubble rise and interaction in a viscous liquid [C]∥Proceeding of the 5th International Conference on Transport Phenomena in Multiphase Systems. Bialystok, Poland: Bialystok Technical University, 2008: 1-7.
BRERETON G, KOROTNEY D. Coaxial and oblique coalescence of two rising bubbles [C]∥The ASME Applied Mechanics Conference. New York, USA: ASME, 1991: 1-16.
0
浏览量
4
下载量
7
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621