Interfacial flow computations using adaptive Eulerian-Lagrangian method for spacecraft applications

被引:8
|
作者
Sim, Jaeheon [1 ]
Shyy, Wei [1 ]
机构
[1] Univ Michigan, Dept Aerosp Engn, Ann Arbor, MI 48109 USA
关键词
multiphase flow; interfacial dynamics; Eulerian-Lagrangian method; adaptive grid; spacecraft fuel draining; thrust oscillation; Faraday waves; IMMERSED BOUNDARY METHOD; CARTESIAN GRID METHOD; DROP DYNAMICS; INCOMPRESSIBLE FLOWS; MOVING BOUNDARIES; MULTIPHASE FLOW; FARADAY WAVES; SURFACE-WAVES; HEAT-TRANSFER; COMPLEX;
D O I
10.1002/fld.2475
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Understanding the interfacial dynamics and fluid physics associated with the operation of spacecraft is important for scientific as well as engineering purposes. To help address the issues associated with moving boundaries, interfacial dynamics, and spatial-temporal variations in time and length scales, a 3-D adaptive EulerianLagrangian method is extended and further developed. The stationary (Eulerian) Cartesian grid is adopted to resolve the fluid flow, and the marker-based triangulated moving (Lagrangian) surface meshes are utilized to treat the phase boundary. The key concepts and numerical procedures, along with the selected interfacial flow problems are presented. Specifically, the liquid fuel draining dynamics in different flow regimes, and the liquid surface stability under vertically oscillating gravitational acceleration are investigated. Direct assessment of experimental measurement and scaling analysis is made to highlight the computational performance of the present approach as well as the key fluid physics influenced by the given flow parameters. Copyright (C) 2010 John Wiley & Sons, Ltd.
引用
收藏
页码:1438 / 1456
页数:19
相关论文
共 50 条
  • [21] New Eulerian-Lagrangian method for salinity calculation
    Zhu, SX
    Ding, PX
    Sha, WY
    Feng, M
    Zhang, WJ
    CHINA OCEAN ENGINEERING, 2001, 15 (04) : 553 - 564
  • [22] Prediction of turbulent gas-solids flow in curved ducts using the Eulerian-Lagrangian method
    Naik, S
    Bryden, IG
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 1999, 31 (03) : 579 - 600
  • [23] Eulerian-Lagrangian flow-vegetation interaction model using immersed boundary method and OpenFOAM
    Chen, Haifei
    Zou, Qing-Ping
    ADVANCES IN WATER RESOURCES, 2019, 126 : 176 - 192
  • [24] Comparison of Eulerian-Lagrangian and Eulerian-Eulerian method for dilute gas-solid flow with side inlet
    Vegendla, S. N. P.
    Heynderickx, G. J.
    Marin, G. B.
    COMPUTERS & CHEMICAL ENGINEERING, 2011, 35 (07) : 1192 - 1199
  • [25] A multiscale Eulerian-Lagrangian cavitating flow solver in OpenFOAM
    Li, Linmin
    Xu, Weisen
    Jiang, Bowen
    Li, Xiaojun
    Zhu, Zuchao
    SOFTWAREX, 2023, 21
  • [26] Eulerian-Lagrangian Fluid Simulation on Particle Flow Maps
    Zhou, Junwei
    Chen, Duowen
    Deng, Molin
    Deng, Yitong
    Sun, Yuchen
    Wang, Sinan
    Xiong, Shiying
    Zhu, Bo
    ACM TRANSACTIONS ON GRAPHICS, 2024, 43 (04):
  • [27] Eulerian-Lagrangian aspects of a steady multiscale laminar flow
    Rossi, Lionel
    Vassilicos, John-Christos
    Hardalupas, Yannis
    PHYSICS OF FLUIDS, 2007, 19 (07)
  • [28] Numerical simulation of spudcan penetration using coupled Eulerian-Lagrangian method
    Khoa, H. D. V.
    Computer Methods and Recent Advances in Geomechanics, 2015, : 199 - 204
  • [29] EULERIAN-LAGRANGIAN SIMULATION ON MICROBUBBLES IN TURBULENT CHANNEL FLOW
    Zhang, Xiaosong
    Wang, Jianhua
    Wan, Decheng
    MARINE 2019: COMPUTATIONAL METHODS IN MARINE ENGINEERING VIII: VIII INTERNATIONAL CONFERENCE ONCOMPUTATIONAL METHODS IN MARINE ENGINEERING (MARINE 2019), 2019, : 285 - 295
  • [30] EULERIAN-LAGRANGIAN RELATIONSHIP IN TURBULENT SHEAR-FLOW
    HWANG, BC
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1976, 21 (10): : 1220 - 1220