西安交通大学能源与动力工程学院,西安,710049
网络首发:2014-06-10,
纸质出版:2014
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雷鹏飞 1, 张家忠 1, 贾艳俊 2. 结构参数对局部弹性翼型气动性能的影响规律[J]. 西安交通大学学报, 2014,48(6):110-116.
Influences of Local Flexible Airfoil Parameters on Aerodynamic Performance[J]. 2014, 48(6): 110-116.
雷鹏飞 1, 张家忠 1, 贾艳俊 2. 结构参数对局部弹性翼型气动性能的影响规律[J]. 西安交通大学学报, 2014,48(6):110-116. DOI: 10.7652/xjtuxb201406019.
Influences of Local Flexible Airfoil Parameters on Aerodynamic Performance[J]. 2014, 48(6): 110-116. DOI: 10.7652/xjtuxb201406019.
采用数值方法研究了低雷诺数下局部弹性翼型结构参数对翼型性能及流动结构的影响。建立了局部弹性结构的振动模型
采用具有双时间步长的任意拉格朗日-欧拉方法和基于特征线的算子分裂法对非定常流固耦合问题进行数值模拟
对不同的结构密度、弹性模量、阻尼下局部弹性翼型的升力以及结构振动的频率特性进行了分析。研究结果表明:局部弹性结构自激振动对流动的控制存在最佳的振动频率范围; 在合适的结构参数下
如较小的结构弹性模量和结构阻尼
局部弹性结构能够产生较大振幅的自激振动
从而改变流动结构并提高翼型升力; 对于具有高升力的局部弹性翼型
结构振动能够显著改变非定常流动分离模式
减小分离区域
达到抑制分离、提高翼型升力的效果。
The influences of structure parameters of airfoil with local flexible structure on the performance and flow structure under low Reynolds number are investigated numerically. The local flexibility model is established
the unsteady fluid-structure interaction is simulated by arbitrary Lagrangian-Eulerian method(ALE)and characteristic-based split(CBS)scheme with dual time step. The results indicate that there is an optimal range of oscillation frequency and amplitude
at which the airfoil lift can be enhanced remarkably. With proper structure parameters
such as small elasticity modulus and structural damping
the coupling between structure and fluid leads to large amplitude oscillation to change the flow structure and to enhance lift. For the cases with high lift enhancement
the structure oscillation facilitates changing flow pattern and reducing separated region to suppress flow separation and enhance airfoil lift.
GREENBLATT D, WYGNANSKI I J. The control of flow separation by periodic excitation[J]. Progress in Aerospace Sciences, 2000, 36(7): 487-545.
战培国, 程娅红, 赵昕. 主动流动控制技术研究[J]. 航空科学技术, 2010(5): 2-6.
ZHAN Peiguo, CHENG Yahong, ZHAO Xin. A review of active flow control technology[J]. Aeronautical Science and Technology, 2010(5): 2-6.
KANG W, ZHANG J Z, FENG P H. Aerodynamic analysis of a localized flexible airfoil at low Reynolds numbers[J]. Communications in Computational Physics, 2012, 11(4): 1300-1310.
MCCROSKEY W J, CARR L W, MCALISTER K W. Dynamic stall experiments on oscillating airfoils[J]. AIAA Journal, 1976, 14(1): 57-63.
WANG C M, WU J C, SANKAR L N. Unsteady aerodynamics of airfoils oscillating in and out of dynamic stall[C]∥AIAA 3rd Applied Aerodynamics Conference. Reston, VA, USA: AIAA, 1985: 4078.
WU J Z, LU X Y, DENNY A G, et al. Post-stall flow control on an airfoil by local unsteady forcing[J]. Journal of Fluid Mechanics, 1998, 371: 21-58.
SMITH R, SHYY W. Computation of unsteady laminar flow over a flexible two-dimensional membrane wing[J]. Physics of Fluids, 1995, 7(9): 2175-2184.
SHYY W, SMITH R. A study of flexible airfoil aerodynamics with application to micro aerial vehicles[C]∥AIAA 28th Fluid Dynamics Conference. Reston, VA, USA: AIAA, 1997: 1933.
PERSSON P O, PERAIRE J, BONET J. A high order discontinuous Galerkin method for fluid-structure interaction[C]∥18th AIAA Computational Fluid Dynamics Conference. Reston, VA, USA: AIAA, 2007: 4327
GORDNIER R E. High fidelity computational simulation of a membrane wing airfoil[J]. Journal of Fluids and Structures, 2009, 25(5): 897-917.
康伟, 张家忠. 翼型局部弹性自激振动的增升减阻效应研究[J]. 西安交通大学学报, 2011, 45(5): 94-101.
KANG Wei, ZHANG Jiazhong. Numerical analysis of lift enhancement and drag reduction by self-induced vibration of localized elastic airfoil[J]. Journal of Xi'an Jiaotong University, 2011, 45(5): 94-101.
雷鹏飞, 张家忠, 陈嘉辉. 局部弹性翼型非定常分离的动力学特性[J]. 力学学报, 2012, 44(1): 13-22.
LEI Pengfei, ZHANG Jiazhong, CHEN Jiahui. Unsteady separation of flow around airfoil with local elastic structure[J]. Chinese Journal of Theoretical and Applide Mechanics, 2012, 44(1): 13-22.
NITHIARASU P. An arbitrary Lagrangian Eulerian(ALE)formulation for free surface flows using the characteristic-based split(CBS)scheme[J]. International Journal for Numerical Methods in Fluids, 2005, 48(12): 1415-1428.
GAITONDE A L. A dual-time method for two-dimensional unsteady incompressible flow calculations[J]. International Journal for Numerical Methods in Engineering, 1998, 41(6): 1153-1166.
WANG Y T, ZHANG J Z. An improved ALE and CBS-based finite element algorithm for analyzing flows around forced oscillating bodies[J]. Finite Elements in Analysis and Design, 2011, 47(9): 1058-1065.
ZHANG J Z, LIU Y, LEI P F, et al. Dynamic snap-through buckling analysis of shallow arches under impact load based on approximate inertial manifolds[J]. Dynamics of Continuous, Discrete and Impulsive Systems: Series B, 2007, 14(5): 287-291.
BATHE K J, ZHANG H. A mesh adaptivity procedure for CFD and fluid-structure interactions[J]. Computers Structures, 2009, 87(11/12): 604-617.
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