Effects of Reynolds number and thickness on an undulatory self-propelled foil

被引:63
作者
Zhang, Dong
Pan, Guang [1 ]
Chao, Liming
Zhang, Ya
机构
[1] Northwestern Polytech Univ, Sch Marine Sci & Technol, Xian 710072, Peoples R China
基金
美国国家科学基金会;
关键词
IMMERSED BOUNDARY METHOD; OSCILLATING FOILS; FISH LOCOMOTION; FLAPPING FOIL; HYDRODYNAMICS; PERFORMANCE; DESIGN; FORCES; MODEL; LAWS;
D O I
10.1063/1.5034439
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The effects of the Reynolds number (Re) and thickness on an undulatory self-propelled foil were numerically investigated using the immersed boundary method. Re varied from 50 to 2 X 10(5), which encompasses the viscous, intermediate, and inertial regimes using a NACA 0012 airfoil. An investigation of the thickness was performed on NACA airfoils with maximum thicknesses of 0.04 similar to 0.24 at two Re values (5 X 10(4) and 500). The results indicated that the foil can achieve a higher forward velocity, perform less work, and exhibit a higher propulsive efficiency with increasing Re. However, the effect of Re is asymptotic beyond 5 X 10(4). Four types of vortex structures exist, and the transition from one regime to another is closely related to hydrodynamic changes. In the thickness study, thinner foils outperformed thicker foils in terms of the forward velocity and input power at both Re values. However, the efficiency related to the conversion of input power into kinetic energy for NACA 0004 was the lowest. An optimum thickness exists that depends on Re. At higher Re, the vortical structure differs for each thickness with the deflection angle, whereas at low Re, the location of the separation point strongly influences the hydrodynamics. Published by AIP Publishing.
引用
收藏
页数:12
相关论文
共 48 条
[1]   Dynamics of freely swimming flexible foils [J].
Alben, Silas ;
Witt, Charles ;
Baker, T. Vernon ;
Anderson, Erik ;
Lauder, George V. .
PHYSICS OF FLUIDS, 2012, 24 (05)
[2]  
An S., 2015, J AIRCRAFT, V46, P216
[3]  
[Anonymous], 1984, Incompressible flow, DOI 10.1002/9781118713075
[4]   Reynolds number, thickness and camber effects on flapping airfoil propulsion [J].
Ashraf, M. A. ;
Young, J. ;
Lai, J. C. S. .
JOURNAL OF FLUIDS AND STRUCTURES, 2011, 27 (02) :145-160
[5]   On the suitability of the immersed boundary method for the simulation of high-Reynolds-number separated turbulent flows [J].
Bernardini, Matteo ;
Modesti, Davide ;
Pirozzoli, Sergio .
COMPUTERS & FLUIDS, 2016, 130 :84-93
[6]   A unified mathematical framework and an adaptive numerical method for fluid-structure interaction with rigid, deforming, and elastic bodies [J].
Bhalla, Amneet Pal Singh ;
Bale, Rahul ;
Griffith, Boyce E. ;
Patankar, Neelesh A. .
JOURNAL OF COMPUTATIONAL PHYSICS, 2013, 250 :446-476
[7]   Fish functional design and swimming performance [J].
Blake, RW .
JOURNAL OF FISH BIOLOGY, 2004, 65 (05) :1193-1222
[8]   Numerical investigation of the hydrodynamics of carangiform swimming in the transitional and inertial flow regimes [J].
Borazjani, Iman ;
Sotiropoulos, Fotis .
JOURNAL OF EXPERIMENTAL BIOLOGY, 2008, 211 (10) :1541-1558
[9]  
Carling J, 1998, J EXP BIOL, V201, P3143
[10]   A review of underwater bio-mimetic propulsion: cruise and fast-start [J].
Chao, Li-Ming ;
Cao, Yong-Hui ;
Pan, Guang .
FLUID DYNAMICS RESEARCH, 2017, 49 (04)