A NUMERICAL-CALCULATION OF FLOW IN A CURVED TUBE MODEL OF THE LEFT MAIN CORONARY-ARTERY

被引:64
作者
PERKTOLD, K [1 ]
NEREM, RM [1 ]
PETER, RO [1 ]
机构
[1] GEORGIA INST TECHNOL,SCH MECH ENGN,ATLANTA,GA 30332
关键词
D O I
10.1016/0021-9290(91)90176-N
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The flow pattern in the left main coronary artery has been calculated using an idealized geometry and by numerically solving the full Navier-Stokes equations for a Newtonian fluid. Two different forms for the entrance velocity profile were used, one a time-varying, flat profile and the other a time-varying, less flat velocity profile. The results obtained demonstrate the presence of secondary motions for conditions simulating flow in the left main coronary artery, with maximum secondary flow velocities being on the order of three to four percent of the maximum axial velocity. This secondary flow phenomenon has an important influence on the wall shear stress distribution, in spite of the fact that there is virtually no alteration in the axial velocity profile. The maximum ratio of the outer wall shear stress to that on the inner wall is 1.4 at a Reynolds number of Re = 270, and it increases with increasing Reynolds number, reaching a value of 1.7 at Re = 810. Although there are significant differences in the results in the immediate vicinity of the inlet for the two different forms of the entrance velocity profile used, this difference does not persist far into the tube. Independent of the choice of the entrance velocity profile, it appears that there will be significant secondary flow effects on the wall shear stress.
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收藏
页码:175 / 189
页数:15
相关论文
共 28 条
[1]   AN EXPERIMENTAL-STUDY OF CORONARY-ARTERY FLUID-MECHANICS [J].
ALTOBELLI, SA ;
NEREM, RM .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1985, 107 (01) :16-23
[2]   FLOW PATTERNS AND SPATIAL-DISTRIBUTION OF ATHEROSCLEROTIC LESIONS IN HUMAN CORONARY-ARTERIES [J].
ASAKURA, T ;
KARINO, T .
CIRCULATION RESEARCH, 1990, 66 (04) :1045-1066
[3]   FLOW IN CURVED PIPES [J].
BERGER, SA ;
TALBOT, L ;
YAO, LS .
ANNUAL REVIEW OF FLUID MECHANICS, 1983, 15 :461-512
[4]   EXPERIMENTAL-STUDY OF PULSATILE FLOW IN A CURVED TUBE [J].
CHANDRAN, KB ;
YEARWOOD, TL ;
WIETING, DW .
JOURNAL OF BIOMECHANICS, 1979, 12 (10) :793-805
[5]   A NUMERICAL STUDY OF FLOW IN CURVED TUBES SIMULATING CORONARY-ARTERIES [J].
CHANG, LJ ;
TARBELL, JM .
JOURNAL OF BIOMECHANICS, 1988, 21 (11) :927-937
[6]   NUMERICAL-SIMULATION OF FULLY-DEVELOPED SINUSOIDAL AND PULSATILE (PHYSIOLOGICAL) FLOW IN CURVED TUBES [J].
CHANG, LJ ;
TARBELL, JM .
JOURNAL OF FLUID MECHANICS, 1985, 161 :175-198
[7]   NUMERICAL SOLUTION OF NAVIER-STOKES EQUATIONS [J].
CHORIN, AJ .
MATHEMATICS OF COMPUTATION, 1968, 22 (104) :745-&
[8]   DISTRIBUTION OF FATTY AND FIBROUS PLAQUES IN YOUNG HUMAN CORONARY-ARTERIES [J].
FOX, B ;
JAMES, K ;
MORGAN, B ;
SEED, A .
ATHEROSCLEROSIS, 1982, 41 (2-3) :337-347
[9]   ARTERIAL GEOMETRY AFFECTS HEMODYNAMICS - A POTENTIAL RISK FACTOR FOR ATHEROSCLEROSIS [J].
FRIEDMAN, MH ;
DETERS, OJ ;
MARK, FF ;
BARGERON, CB ;
HUTCHINS, GM .
ATHEROSCLEROSIS, 1983, 46 (02) :225-231
[10]  
Girault V., 1980, FINITE ELEMENT METHO