Hydrodynamics of a swimming batoid fish at Reynolds numbers up to 148 000

被引:13
作者
Zhang, Dong [1 ,2 ]
Huang, Wei-Xi [1 ]
机构
[1] Tsinghua Univ, Dept Engn Mech, AML, Beijing 100084, Peoples R China
[2] Harbin Engn Univ, Qingdao Innovat & Dev Base, Qingdao 266000, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
swimming/flying; propulsion; vortex dynamics; DIRECT NUMERICAL-SIMULATION; LIFT-GENERATING MECHANISMS; IMMERSED BOUNDARY METHOD; LEADING-EDGE VORTICES; VORTEX; FLOW; DYNAMICS; PERFORMANCE; INSTABILITIES; LOCOMOTION;
D O I
10.1017/jfm.2023.325
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Flow around a tethered model of a swimming batoid fish is studied by using the wall-modelled large-eddy simulation in conjunction with the immersed boundary method. A Reynolds number (Re) up to 148 000 is chosen, and it is comparable to that of a medium-sized aquatic animal in cruising swimming state. At such a high Re, we provide, to the best of our knowledge, the first evidence of hairpin vortical (HV) structures near the body surface using three-dimensional high-fidelity flow field data. It is observed that such small-scale vortical structures are mainly formed through two mechanisms: the leading-edge vortex (LEV)-secondary filament-HV and LEV-HV transformations in different regions. The HVs create strong fluctuations in the pressure distribution and frequency spectrum. Simulations are also conducted at Re = 1480 and 14 800 to reveal the effect of Reynolds number. Variations of the flow separation behaviour and local pressure with Re are presented. Our results indicate that low -Re simulations are meaningful when the focus is on the force variation tendency, whereas high -Re simulations are needed when concerning flow fluctuations and turbulence mechanisms.
引用
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页数:26
相关论文
共 79 条
[51]   Direct numerical simulation of complete H-type and K-type transitions with implications for the dynamics of turbulent boundary layers [J].
Sayadi, Taraneh ;
Hamman, Curtis W. ;
Moin, Parviz .
JOURNAL OF FLUID MECHANICS, 2013, 724 :480-509
[52]   On streak breakdown in bypass transition [J].
Schlatter, Philipp ;
Brandt, Luca ;
de lange, H. C. ;
Henningson, Dan S. .
PHYSICS OF FLUIDS, 2008, 20 (10)
[53]  
Senturk U, 2019, AIAA J, V57, P2663, DOI [10.2514/1.1058371, 10.2514/1.J058371]
[54]   Flapping wings and aerodynamic lift: The role of leading-edge vortices [J].
Shyy, Wei ;
Lin, Hao .
AIAA JOURNAL, 2007, 45 (12) :2817-2819
[55]   ON THE DYNAMICS OF NEAR-WALL TURBULENCE [J].
SMITH, CR ;
WALKER, JDA ;
HAIDARI, AH ;
SOBRUN, U .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1991, 336 (1641) :131-175
[56]   Undulatory and oscillatory swimming [J].
Smits, Alexander J. .
JOURNAL OF FLUID MECHANICS, 2019, 874 :P1
[57]   Immersed boundary methods for simulating fluid-structure interaction [J].
Sotiropoulos, Fotis ;
Yang, Xiaolei .
PROGRESS IN AEROSPACE SCIENCES, 2014, 65 :1-21
[58]   Unconventional lift-generating mechanisms in free-flying butterflies [J].
Srygley, RB ;
Thomas, ALR .
NATURE, 2002, 420 (6916) :660-664
[59]  
Tani I., 1964, PROG AEROSP SCI, V5, P70, DOI [10.1016/0376-0421(64)90004-1, DOI 10.1016/0376-0421(64)90004-1]
[60]   Flying and swimming animals cruise at a Strouhal number tuned for high power efficiency [J].
Taylor, GK ;
Nudds, RL ;
Thomas, ALR .
NATURE, 2003, 425 (6959) :707-711