Vorticity alignment results for the three-dimensional Euler and Navier-Stokes equations

被引:47
作者
Galanti, B [1 ]
Gibbon, JD [1 ]
Heritage, M [1 ]
机构
[1] UNIV LONDON IMPERIAL COLL SCI TECHNOL & MED,DEPT MATH,LONDON SW7 2BZ,ENGLAND
关键词
D O I
10.1088/0951-7715/10/6/013
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
We address the problem in Navier-Stokes isotropic turbulence of why the vorticity accumulates on thin sets such as quasi-one-dimensional tubes and quasi-two-dimensional sheets. Taking our motivation from the work of Ashurst, Kerstein, Kerr and Gibbon, who observed that the vorticity vector omega aligns with the intermediate eigenvector of the strain-matrix S. we study this problem in the context of both the three-dimensional Euler and Navier-Stokes equations using the variables alpha = <(xi)over cap>. S<(xi)over cap> and chi = <(xi)over cap> x S<(xi)over cap> where <(xi)over cap> = w/omega. This introduces the dynamic angle phi(x,t) = arctan(chi/alpha), which lies between omega and S omega. For the Euler equations a closed set of differential equations for alpha and chi is derived in terms of the Hessian matrix of the pressure P = (p,ij). For the Navier-Stokes equations. the Burgers vortex and shear-layer solutions turn out to be the Lagrangian fixed-paint solutions of the equivalent (alpha, chi) equations with a corresponding angle phi = 0. Under certain assumptions for more general Rows it is shown that there is an attracting fixed point of the (alpha, chi) equations which corresponds to positive vortex stretching and for which the cosine of the corresponding angle is close to unity. This indicates that near alignment is an attracting state of the system and is consistent with the formation of Burgers-like structures.
引用
收藏
页码:1675 / 1694
页数:20
相关论文
共 56 条
[41]   SMALL-SCALE FEATURES OF VORTICITY AND PASSIVE SCALAR FIELDS IN HOMOGENEOUS ISOTROPIC TURBULENCE [J].
RUETSCH, GR ;
MAXEY, MR .
PHYSICS OF FLUIDS A-FLUID DYNAMICS, 1991, 3 (06) :1587-1597
[42]  
Saffman P.G., 1993, Vortex Dynamics, V1st edn
[43]   INTERMITTENT VORTEX STRUCTURES IN HOMOGENEOUS ISOTROPIC TURBULENCE [J].
SHE, ZS ;
JACKSON, E ;
ORSZAG, SA .
NATURE, 1990, 344 (6263) :226-228
[44]   NUMERICAL STUDY OF SMALL-SCALE INTERMITTENCY IN 3-DIMENSIONAL TURBULENCE [J].
SIGGIA, ED .
JOURNAL OF FLUID MECHANICS, 1981, 107 (JUN) :375-406
[45]   CHARACTERIZATION OF VORTEX TUBES AND SHEETS [J].
TANAKA, M ;
KIDA, S .
PHYSICS OF FLUIDS A-FLUID DYNAMICS, 1993, 5 (09) :2079-2080
[48]   ON ALIGNMENTS AND SMALL-SCALE STRUCTURE IN TURBULENT PIPE-FLOW [J].
TSINOBER, A ;
EGGELS, JGM ;
NIEUWSTADT, FTM .
FLUID DYNAMICS RESEARCH, 1995, 16 (05) :297-310
[49]   EXPERIMENTAL INVESTIGATION OF THE FIELD OF VELOCITY-GRADIENTS IN TURBULENT FLOWS [J].
TSINOBER, A ;
KIT, E ;
DRACOS, T .
JOURNAL OF FLUID MECHANICS, 1992, 242 :169-192
[50]  
TSINOBER A, 1997, IN PRESS FLUID DYNAM, V20