Wall shear stress in accelerating pipe flows

被引:0
作者
He, S [1 ]
Jackson, JD [1 ]
机构
[1] Univ Manchester, Sch Engn, Manchester M13 9PL, Lancs, England
来源
ENERGY CONVERSION AND APPLICATION, VOL I AND II | 2001年
关键词
unsteady flow; wall shear stress; turbulent pipe flow;
D O I
暂无
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper presents results from experimental and computational studies on the response of wall shear stress in transient turbulent pipe flow with a ramp-type increases of flow rate. Wall shear stress has been obtained from the measurements of the axial pressure gradient and flow rate for transients with various accelerations. Numerical simulations have been conducted using a low-Reynolds-number k-epsilon turbulence model in conjunction with a finite volume/finite difference discretization scheme. Simulations with turbulent shear stress or turbulent diffusivity artificially frozen were also carried out. The present studies show that the variation of wall shear stress in a rising ramp flow transient follows a pattern of over-shooting, delay and recovery. This is a consequence of the combined effect of the inertia of the fluid and the delay in the response of turbulence. The effect of the former dominates in the early stages of a faster transient and causes overshooting in the response of wall shear stress. The effect of the delayed response of turbulence builds-up with time during a transient and results in an undershooting in the response of wall shear stress. Both effects become smaller as the flow rate increases in the later stages of a rising ramp and wall shear stress then tends to follow the corresponding pseudo-steady variation. The effect of increasing the starting Reynolds number is to reduce the deviation of the wall shear from its corresponding pseudo-steady state value.
引用
收藏
页码:442 / 448
页数:7
相关论文
共 50 条
[41]   Optimization of multiplane μPIV for wall shear stress and wall topography characterization [J].
Massimiliano Rossi ;
Ralph Lindken ;
Jerry Westerweel .
Experiments in Fluids, 2010, 48 :211-223
[42]   Combined Visualization of Wall Thickness and Wall Shear Stress for the Evaluation of Aneurysms [J].
Glasser, Sylvia ;
Lawonn, Kai ;
Hoffmann, Thomas ;
Skalej, Martin ;
Preim, Bernhard .
IEEE TRANSACTIONS ON VISUALIZATION AND COMPUTER GRAPHICS, 2014, 20 (12) :2506-2515
[43]   DISTRIBUTION OF REYNOLDS SHEAR STRESS IN STEADY AND UNSTEADY FLOWS [J].
Alfadhli, Ishraq ;
Yang, Shu-Qing ;
Sivakumar, Muttucumaru .
GEOCONFERENCE ON WATER RESOURCES, FOREST, MARINE AND OCEAN ECOSYSTEMS, 2013, :109-116
[44]   Research on Wall Shear Stress Considering Wall Roughness when Shear Swirling Flow Vibration Cementing [J].
Cui, Zhihua ;
Ai, Chi ;
Feng, Fuping .
2016 INTERNATIONAL CONFERENCE ON MATERIALS SCIENCE, RESOURCE AND ENVIRONMENTAL ENGINEERING, 2017, 1794
[45]   Wall shear-stress modelisation for two-fluid pulsatile flows through deformable tubes of small diameter [J].
Amar, H ;
Kerroum, M ;
Zeggwagh, G .
COMPTES RENDUS DE L ACADEMIE DES SCIENCES SERIE II FASCICULE B-MECANIQUE PHYSIQUE ASTRONOMIE, 1998, 326 (03) :197-204
[46]   Analyzing guard-heating to enable accurate hot-film wall shear stress measurements for turbulent flows [J].
Etrati, Ali ;
Assadian, Elsa ;
Bhiladvala, Rustom B. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 70 :835-843
[47]   Numerical study of the near-wall behaviour of particles in turbulent pipe flows [J].
Portela, LM ;
Cota, P ;
Oliemans, RVA .
POWDER TECHNOLOGY, 2002, 125 (2-3) :149-157
[48]   Wall shear stress during impingement at the building platform can exceed nozzle wall shear stress in microvalve-based bioprinting [J].
Nasehi, Ramin ;
Aveic, Sanja ;
Fischer, Horst .
INTERNATIONAL JOURNAL OF BIOPRINTING, 2023, 9 (04)
[49]   Diastolic Wall Shear Stress in the Internal Carotid Artery Is Associated with Different Cardiovascular Risk Factors than Systolic Wall Shear Stress [J].
Palm-Meinders, Inge H. ;
Box, Frieke M. A. ;
de Craen, Anton J. M. ;
Blauw, Gerard J. ;
van Buchem, Mark A. ;
van der Grond, Jeroen .
CEREBROVASCULAR DISEASES, 2009, 28 (02) :185-190
[50]   Dynamic response of wall shear stress on the stenosed artery [J].
Sen, S. ;
Chakravarty, S. .
COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2009, 12 (05) :523-529