Smoothed Particle Hydrodynamics Simulations of Turbulent Flow in Curved Pipes With Different Geometries: A Comparison With Experiments

被引:5
作者
Alvarado-Rodriguez, C. E. [1 ,2 ]
Sigalotti, L. Di G. [3 ]
Klapp, J. [4 ]
Fierro-Santillan, C. R. [4 ]
Aragon, F. [4 ]
Uribe-Ramirez, A. R. [2 ]
机构
[1] CONACYT, Av Insurgentes 1582, Ciudad De Mexico 03940, Mexico
[2] Univ Guanajuato, Dept Ingn Quim, DCNyE, Noria Alta S-N, Guanajuato 36000, Mexico
[3] Univ Autonoma Metropolitana UAM A, Dept Ciencias Basicas, Av San Pablo 180, Ciudad De Mexico 02200, Mexico
[4] Inst Nacl Invest Nucl ININ, Carretera Mexico Toluca Km 36-5, Ocoyoacac 52750, Estado De Mexic, Mexico
来源
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME | 2021年 / 143卷 / 09期
关键词
computational fluid dynamics (CFD); pipe flow; pipe bends; confined turbulent flow; large eddy simulation (LES); mathematical modeling; REYNOLDS-NUMBER; NUMERICAL-SIMULATION; BOUNDARY-CONDITIONS; SECONDARY FLOW; U-BEND; SPH; VELOCITY; LAMINAR; DOWNSTREAM; SEPARATION;
D O I
10.1115/1.4050514
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The swirling secondary flow in curved pipes is studied in three-space dimensions using a weakly compressible smoothed particle hydrodynamics (WCSPH) formulation coupled to new nonreflecting outflow boundary conditions. A large eddy simulation (LES) model for turbulence is benchmarked with existing experimental data. After validation of the present model against experimental results for a 90deg pipe bend, a detailed numerical study aimed at reproducing experimental flow measurements for a wide range of Reynolds numbers has been performed for different pipe geometries, including U pipe bends, S-shaped pipes, and helically coiled pipes. In all cases, the SPH calculated behavior shows reasonably good agreement with the measurements across and downstream the bend in terms of streamwise velocity profiles and cross-sectional contours. Maximum mean-root-square deviations from the experimentally obtained profiles are always less than similar to 1.8%. This combined with the very good matching between the SPH and the experimental cross-sectional contours shows the uprising capabilities of the present scheme for handling engineering applications with streamline curvature, such as flows in bends and manifolds.
引用
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页数:17
相关论文
共 70 条
[1]   A generalized wall boundary condition for smoothed particle hydrodynamics [J].
Adami, S. ;
Hu, X. Y. ;
Adams, N. A. .
JOURNAL OF COMPUTATIONAL PHYSICS, 2012, 231 (21) :7057-7075
[2]   Nonreflecting outlet boundary conditions for incompressible flows using SPH [J].
Alvarado-Rodriguez, Carlos E. ;
Klapp, Jaime ;
Sigalotti, Leonardo Di G. ;
Dominguez, Jose M. ;
de la Cruz Sanchez, Eduardo .
COMPUTERS & FLUIDS, 2017, 159 :177-188
[3]   Free-surface flows solved by means of SPH schemes with numerical diffusive terms [J].
Antuono, M. ;
Colagrossi, A. ;
Marrone, S. ;
Molteni, D. .
COMPUTER PHYSICS COMMUNICATIONS, 2010, 181 (03) :532-549
[4]   DEVELOPING TURBULENT-FLOW IN A U-BEND OF CIRCULAR CROSS-SECTION - MEASUREMENT AND COMPUTATION [J].
AZZOLA, J ;
HUMPHREY, JAC ;
IACOVIDES, H ;
LAUNDER, BE .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1986, 108 (02) :214-221
[5]   Robustness and accuracy of SPH formulations for viscous flow [J].
Basa, Mihai ;
Quinlan, Nathan J. ;
Lastiwka, Martin .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2009, 60 (10) :1127-1148
[6]  
Becker M, 2007, SYMPOSIUM ON COMPUTER ANIMATION 2007: ACM SIGGRAPH/ EUROGRAPHICS SYMPOSIUM PROCEEDINGS, P209
[7]  
CHANG SM, 1983, PHYSICOCHEM HYDRODYN, V4, P243
[8]   An experimental investigation regarding the laminar to turbulent flow transition in helically coiled pipes [J].
Cioncolini, A ;
Santini, L .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2006, 30 (04) :367-380
[9]   Numerical simulation of interfacial flows by smoothed particle hydrodynamics [J].
Colagrossi, A ;
Landrini, M .
JOURNAL OF COMPUTATIONAL PHYSICS, 2003, 191 (02) :448-475
[10]  
Crespo AJC, 2007, CMC-COMPUT MATER CON, V5, P173