A new finite volume method on junction coupling and boundary treatment for flow network system analyses

被引:21
作者
Hong, Seok Woo [2 ]
Kim, Chongam [1 ,2 ]
机构
[1] Seoul Natl Univ, Inst Adv Aerosp Technol, Sch Mech & Aerosp Engn, Seoul 151744, South Korea
[2] Seoul Natl Univ, Sch Mech & Aerosp Engn, Seoul 151744, South Korea
关键词
ghost junction method; finite volume method; flow network; junction coupling; pressure loss; T-junction; TRANSIENT TURBULENT FRICTION; HIGH-SPEED TRAINS; IMPLICIT METHOD; RIEMANN PROBLEM; GAS-FLOWS;
D O I
10.1002/fld.2212
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
To adequately analyze the flow in a pipe or duct network system, traditional node-based junction coupling methods require junction losses, which are specified by empirical or analytic correlations. In this paper, a new finite volume junction coupling method using a ghost junction cell is developed by considering the interchange of linear momentum as well as the important wall effect at the junction without requiring any correlation on the junction loss. Also, boundary treatment is modified to preserve the stagnation enthalpy across boundaries, such as the pipe end and the interface between the junction and the branch. The computational accuracy and efficiency of Godunov-type finite volume schemes are investigated by tracing the total mechanical energy of rapid transients due to sudden closure of a valve at the downstream end. Among the approximate Riemann solvers, the proposed RoeM scheme turns out to be more suitable for finite volume junction treatment than the original Roe's approximate Riemann solver because of conservation of the stagnation enthalpy across the geometric discontinuity. From the viewpoint of computational cost, the implicit LU-SGS time integration is appropriate for steady and slow transients, while the explicit third-order TVD Runge-Kutta scheme is advantageous for rapid transients. Copyright (C) 2009 John Wiley & Sons, Ltd.
引用
收藏
页码:707 / 742
页数:36
相关论文
共 35 条
[1]  
[Anonymous], NUMERICAL COMPUTATIO
[2]   Gas flow in pipeline networks [J].
Banda, Mapundi K. ;
Herty, Michael ;
Klar, Axel .
NETWORKS AND HETEROGENEOUS MEDIA, 2006, 1 (01) :41-56
[3]   High-speed trains: Prediction of micro-pressure wave radiation from tunnel portals [J].
Baron, A. ;
Molteni, P. ;
Vigevano, L. .
JOURNAL OF SOUND AND VIBRATION, 2006, 296 (1-2) :59-72
[4]   The alleviation of the aerodynamic drag and wave effects of high-speed trains in very long tunnels [J].
Baron, A ;
Mossi, M ;
Sibilla, S .
JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2001, 89 (05) :365-401
[5]   Calculation of steady flow pressure loss coefficients for pipe junctions [J].
Bassett, MD ;
Winterbone, DE ;
Pearson, RJ .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 2001, 215 (08) :861-881
[6]   Hydraulic transient guidelines for protecting water distribution systems [J].
Boulos, PF ;
Karney, BW ;
Wood, DJ ;
Lingireddy, S .
JOURNAL AMERICAN WATER WORKS ASSOCIATION, 2005, 97 (05) :111-124
[7]   ON THE RIEMANN PROBLEM FOR LIQUID OR GAS-LIQUID MEDIA [J].
CHEN, TJ ;
COOKE, CH .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 1994, 18 (05) :529-541
[8]  
Colombo RM, 2006, NETW HETEROG MEDIA, V1, P495
[9]  
Gerhart P.M., 1992, FUNDAMENTALS FLUID M
[10]  
Ghidaoui M. S., 2005, Applied Mechanics Review, V58, P49, DOI 10.1115/1.1828050