Inviscid evolution of a uniform vortex dipole in a strain field

被引:0
作者
Hu, Jiacheng [1 ]
Peterson, Sean D. [1 ]
机构
[1] Univ Waterloo, Dept Mech & Mechatron Engn, Waterloo, ON N2L 3G1, Canada
关键词
vortex dynamics; turbulence theory; contour dynamics; VORTICES; SINGULARITY; TURBULENCE; EQUATIONS; MECHANISM; DYNAMICS;
D O I
10.1017/jfm.2023.594
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Competing models employing anti-parallel vortex collision in search of a finite-time singularity of Euler's equation have arisen recently. Both the vortex sheet model proposed by Brenner et al. (Phys. Rev. Fluids, vol. 1, 2016, 084503) and the 'tent' model proposed by Moffatt & Kimura (J. Fluid Mech., vol. 861, 2019, pp. 930-967) consider a vortex monopole exposed to a strain flow to model the evolution of interacting anti-parallel vortices, a fundamental element in the turbulent cascade. Herein we employ contour dynamics to explore the inviscid evolution of a vortex dipole subjected to an external strain flow with and without axial stretching. We find that for any strain-to-vorticity ratio epsilon, the constituent vortices compress indefinitely, with weaker strain flows causing flattening to occur more slowly. At low epsilon, the vortex dipole forms the well-documented head-tail structure, whereas increasing epsilon results in the dipole compressing into a pair of vortex sheets with no appreciable head structure. Axial stretching effectively lowers epsilon dynamically throughout the evolution, thus delaying the transition from the head-tail regime to the vortex sheet regime to higher strain-to-vorticity ratios. Findings from this study offer a bridge between the two cascade models, with the particular mechanism arising depending on epsilon. It also suggests limits for the 'tent' model for a finite-time singularity, wherein the curvature-induced strain flow must be very weak in comparison with the vorticity density-driven mutual attraction such that the convective time scale of the evolution exceeds the core flattening time scale.
引用
收藏
页数:21
相关论文
共 50 条
[31]   EVOLUTION, INTERACTION AND COLLISIONS OF VORTEX FILAMENTS [J].
Banica, Valeria ;
Miot, Evelyne .
DIFFERENTIAL AND INTEGRAL EQUATIONS, 2013, 26 (3-4) :355-388
[32]   The Sadovskii vortex in strain [J].
Freilich, Daniel V. ;
Smith, Stefan G. Llewellyn .
JOURNAL OF FLUID MECHANICS, 2017, 825 :479-501
[33]   Evolution of vortex configuration for superconducting ring in the presence of an externally applied field [J].
Shi Liang-Ma ;
Zhou Ming-Jian ;
Zhu Ren-Yi .
ACTA PHYSICA SINICA, 2014, 63 (24) :247501
[34]   Oblique collisions and catching-up phenomena of vortex dipoles in a uniform Bose-Einstein condensate [J].
Yang, Guoquan ;
Zhang, Suying ;
Han, Wei .
PHYSICA SCRIPTA, 2019, 94 (07)
[35]   Vortex ground state for small arrays of magnetic particles with dipole coupling [J].
Dzian, S. A. ;
Galkin, A. Yu. ;
Ivanov, B. A. ;
Kireev, V. E. ;
Muravyov, V. M. .
PHYSICAL REVIEW B, 2013, 87 (18)
[36]   Inviscid vortex shedding model for the clap and fling motion of insect flights [J].
Sohn, Sung-Ik .
PHYSICAL REVIEW E, 2018, 98 (03)
[37]   Scaling properties towards vortex reconnection under Biot-Savart evolution [J].
Kimura, Y. ;
Moffatt, H. K. .
FLUID DYNAMICS RESEARCH, 2018, 50 (01)
[38]   LES validation on near-field wingtip vortex evolution with wind tunnel characterization at low Reynolds number [J].
Chan, Jia Cheng ;
Hesse, Henrik ;
Wang, Peng Cheng .
AEROSPACE SCIENCE AND TECHNOLOGY, 2025, 157
[39]   Lift-induced vortex dipole collapse [J].
Ravichandran, S. ;
Dixit, Harish N. ;
Govindarajan, Rama .
PHYSICAL REVIEW FLUIDS, 2017, 2 (03)