A general bond graph approach for computational fluid dynamics

被引:14
|
作者
Balino, J. L.
Larreteguy, A. E.
Raso, E. F. Gandolfo
机构
[1] Univ Sao Paulo, BR-05508900 Sao Paulo, Brazil
[2] Univ Argentina Empresa, RA-1073 Buenos Aires, DF, Argentina
[3] Univ Nacl Cuyo, RA-5500 Mendoza, Argentina
关键词
bond graphs; computational fluid dynamics; fluid mechanics; finite elements; numerical methods;
D O I
10.1016/j.simpat.2006.03.001
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
A general bond graph approach for computational fluid dynamics is presented. Density, velocity and entropy per unit volume are used as independent variables for a single-phase, single-component flow. Time-dependent nodal values and interpolation functions are introduced to represent the flow field. Nodal vectors of mass, velocity and entropy are defined as bond graph state variables. It can be shown that the system total energy can be represented as a three-port IC-field. The conservation of linear momentum for the nodal velocity is represented at the inertial port, while mass and entropy conservation equations are represented at the capacitive ports. All kind of boundary conditions are handled consistently and can be represented as generalized modulated effort or flow sources. As a result of a combination of bond graph concepts with elements of numerical methods, a new approach was developed, which is a foundation of a bridge between bond graphs and CFD. (C) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:884 / 908
页数:25
相关论文
共 50 条
  • [31] Computational Fluid Dynamics
    Kraemer, Ewald
    HIGH PERFORMANCE COMPUTING IN SCIENCE AND ENGINEERING'13: TRANSACTIONS OF THE HIGH PERFORMANCE COMPUTING CENTER, STUTTGART (HLRS) 2013, 2013, : 275 - 280
  • [32] Computational Fluid Dynamics
    Wagner, Siegfried
    HIGH PERFORMANCE COMPUTING IN SCIENCE AND ENGINEERING '09, 2010, : 225 - 228
  • [33] Computational fluid dynamics
    Wagner, Ing. Siegfried
    High Performance Computing in Science and Engineering '06, 2007, : 199 - 203
  • [34] Computational fluid dynamics
    Chemical Engineering (New York), 1996, 103 (12):
  • [35] Computational Fluid Dynamics
    Kraemer, Ewald
    HIGH PERFORMANCE COMPUTING IN SCIENCE AND ENGINEERING'14: TRANSACTIONS OF THE HIGH PERFORMANCE COMPUTING CENTER, STUTTGART (HLRS) 2014, 2015, : 267 - 274
  • [36] Computational fluid dynamics
    Lax, Peter D.
    JOURNAL OF SCIENTIFIC COMPUTING, 2007, 31 (1-2) : 185 - 193
  • [37] Structural improvements on hydrodynamic separators: a computational fluid dynamics approach
    Mendoza, Joseph Albert
    Lee, Dong Hoon
    Lee, Sang-Il
    Kang, Joo-Hyon
    WATER SCIENCE AND TECHNOLOGY, 2016, 74 (12) : 2898 - 2908
  • [38] A computational fluid dynamics approach to determine white matter permeability
    Marco Vidotto
    Daniela Botnariuc
    Elena De Momi
    Daniele Dini
    Biomechanics and Modeling in Mechanobiology, 2019, 18 : 1111 - 1122
  • [39] Thermotechnical modelling of hard turning: A computational fluid dynamics approach
    Kundrak, Janos
    Gyani, Karoly
    Tolvaj, Bela
    Palmai, Zoltan
    Toth, Robert
    Markopoulos, Angelos P.
    SIMULATION MODELLING PRACTICE AND THEORY, 2017, 70 : 52 - 64
  • [40] An Approach for Sensory Effects Dispersion Simulation with Computational Fluid Dynamics
    Rodrigues, Renato
    da Silva, Jose Ricardo, Jr.
    Brandao, Diego
    dos Santos, Joel
    PROCEEDINGS OF THE 28TH BRAZILIAN SYMPOSIUM ON MULTIMEDIA AND THE WEB, WEBMEDIA 2022, 2022, : 368 - 376