1. 长安大学公路学院,西安,710064
2. 西安交通大学航天航空学院,西安,710049
3. 西安交通大学机械结构强度与振动国家重点实验室,西安,710049
4. 西安交通大学陕西省先进飞行器服役环境与控制重点实验室,西安,710049
: 2023-02-16。作者简介: 孟俊苗(1987—),女,讲师。基金项目: 国家自然科学基金资助项目(52192633, 92152301)
网络首发:2023-09-10,
纸质出版:2023
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孟俊苗, 韩佳坤, 陈刚. 翼型下表面柔性襟翼流动控制机理研究[J]. 西安交通大学学报, 2023,57(9):22-30.
MENG Junmiao, HAN Jiakun, CHEN Gang. Research on the Flow Control Mechanism of a Flexible Flap on the Airfoil Lower Surface[J]. 2023, 57(9): 22-30.
孟俊苗, 韩佳坤, 陈刚. 翼型下表面柔性襟翼流动控制机理研究[J]. 西安交通大学学报, 2023,57(9):22-30. DOI: 10.7652/xjtuxb202309003.
MENG Junmiao, HAN Jiakun, CHEN Gang. Research on the Flow Control Mechanism of a Flexible Flap on the Airfoil Lower Surface[J]. 2023, 57(9): 22-30. DOI: 10.7652/xjtuxb202309003.
为解决低雷诺数下仿生飞行器设计中边界层流动分离这一热点问题
仿照鸟类次级羽毛的流动控制机制
提出了利用翼型下表面柔性襟翼进行非定常流动控制的方法。建立了一种以浸入边界法为核心的通用IB-LB-FEM流固耦合数值模拟框架
并系统研究了下表面柔性襟翼位置和刚度系数对NACA0012翼型非定常流动的影响
揭示了柔性襟翼流固耦合效应下的变形规律及其非定常流动控制机理。研究结果表明:当柔性襟翼靠近尾缘时
其对翼型气动性能的影响较为明显
其中最大平均升阻比相比无襟翼翼型提升了33.32%; 下表面柔性襟翼并没有直接参与翼型表面流动分离的控制
但其通过扰动翼型下表面的非定常流动在襟翼后方形成新的流动分离从而影响了翼型的气动特性。此外
改变下表面柔性襟翼的刚度系数
将充分利用流固耦合特性有效改善翼型的气动性能。研究对于深入柔性襟翼流动控制机理
解决仿生飞行器的流动分离提供了新的研究思路。
In order to solve the hot issue of the boundary layer flow separation in the design of bio-inspired aircraft at low Reynolds number
a method of unsteady flow control using flexible flaps on the lower surface of the airfoil was proposed in the paper based on the flow control mechanism of bird secondary feathers. Specifically
a general IB-LB-FEM fluid-structure coupling method with the immersed boundary method as the core was established
the effect of the position and stiffness coefficient of the flexible flap on the unsteady flow of NACA0012 airfoil was systematically studied
and the deformation law and unsteady flow control mechanism of the flexible flap under fluid-structure coupling were revealed. The results show that the influence of the flap near the trailing edge of the airfoil on the aerodynamics of the airfoil is more obvious with the maximum average lift-drag ratio being 33.32% higher than that of the airfoil without flaps; the flexible flap on the lower surface does not directly participate in the control of the flow separation on the surface of the airfoil
but it can form a new flow separation behind the flap by disturbing the unsteady flow on the lower surface of the airfoil
thus affecting the aerodynamics of the airfoil; by changing the stiffness coefficient of the flexible flap on the lower surface of the airfoil
the fluid-structure coupling characteristics of the flexible flap can also effectively improve the aerodynamics of the airfoil. Focusing on studying the flow control mechanism of the flexible flap
the study can provide a new research idea for solving the flow separation of bionic aircraft.
SCHLÜTER J U. Lift enhancement at low Reynolds numbers using self-activated movable flaps [J]. Journal of Aircraft, 2010, 47(1): 348-351.
NGUYEN K, AU L T K, PHAN H V, et al. Effects of wing kinematics, corrugation, and clap-and-fling on aerodynamic efficiency of a hovering insect-inspired flapping-wing micro air vehicle [J]. Aerospace Science and Technology, 2021, 118: 106990.
田晨晔, 刘小民, 王加浩, 等. 仿鸟翼厚度分布特征叶片的贯流风机气动性能研究 [J]. 西安交通大学学报, 2022, 56(3): 84-93.
TIAN Chenye, LIU Xiaomin, WANG Jiahao, et al. Study on aerodynamic performance of the cross flow fan using bionic blade with bird wing-like thickness distribution [J]. Journal of Xi'an Jiaotong University, 2022, 56(3): 84-93.
李典, 刘小民, 杨罗娜. 仿鸮翼的三维仿生翼型叶片气动特性研究 [J]. 西安交通大学学报, 2016, 50(9): 111-118.
LI Dian, LIU Xiaomin, YANG Luona. Aerodynamic characteristics of 3D bionic blade inspired by owl wing [J]. Journal of Xi'an Jiaotong University, 2016, 50(9): 111-118.
FANG Zhe, GONG Chunlin, REVELL A, et al. Passive separation control of a NACA0012 airfoil via a flexible flap [J]. Physics of Fluids, 2019, 31(10): 101904.
吴立明, 姜怡欣, 刘小民, 等. 几种仿生翼型动态失速特性的数值分析 [J]. 西安交通大学学报, 2022, 56(9):1-9.
WU Liming, JIANG Yixin, LIU Xiaomin, et al. Numerical analysis of dynamic stall characteristics of several bionic airfoils [J]. Journal of Xi'an Jiaotong University, 2022, 56(9): 1-9.
CARRUTHERS A C, THOMAS A L R, TAYLOR G K. Automatic aeroelastic devices in the wings of a steppe eagle Aquila nipalensis [J]. Journal of Experimental Biology, 2007, 210(23): 4136-4149.
BRAMESFELD G, MAUGHMER M D. Experimental investigation of self-actuating, upper-surface, high-lift-enhancing effectors [J]. Journal of Aircraft, 2002, 39(1): 120-124.
VERMA A, KULKARNI V. Effect of self-actuating flap on the aerodynamic performance of flat plate wing at low Reynolds number [C]//ASME 2021 International Mechanical Engineering Congress and Exposition. New York, USA: ASME, 2021: V004T04A008.
HAO Lishu, GAO Yongwei, SHANG Yunbin. Experimental study on the effect of bionic flap parameters on airfoil aerodynamic performance [J]. Proceedings of the Institution of Mechanical Engineers: Part C Journal of Mechanical Engineering Science, 2022, 236(2): 908-915.
JOHNSTON J, GOPALARATHNAM A, EDWARDS J. Experimental investigation of Bio-Inspired high lift effectors on a 2-D airfoil [C]//29th AIAA Applied Aerodynamics Conference. Reston, VA, USA: AIAA, 2011: AIAA 2011-3791.
WANG Longjun, ALAM M M, ZHOU Yu. Experimental study of a passive control of airfoil lift using bioinspired feather flap [J]. Bioinspiration Biomimetics, 2019, 14(6): 066005.
VENKATARAMAN D, BOTTARO A. Numerical modeling of flow control on a symmetric aerofoil via a porous, compliant coating [J]. Physics of Fluids, 2012, 24(9): 093601.
NAIR N J, FLYNN Z, GOZA A. Numerical study of multiple bio-inspired torsionally hinged flaps for passive flow control [J]. Fluids, 2022, 7(2): 44.[15] BHATNAGAR P L, GROSS E P, KROOK M. A model for collision processes in gases: Ⅰ small amplitude processes in charged and neutral one-component systems [J]. Physical Review, 1954, 94(3): 511-525.
何雅玲, 王勇, 李庆. 格子Boltzmann方法的理论及应用 [M]. 北京: 科学出版社, 2009.
GUO Zhaoli, ZHENG Chuguang, SHI Baochang. Discrete lattice effects on the forcing term in the lattice Boltzmann method [J]. Physical Review: E, 2002, 65(4): 046308.
SHU C, LIU N, CHEW Y T. A novel immersed boundary velocity correction-lattice Boltzmann method and its application to simulate flow past a circular cylinder [J]. Journal of Computational Physics, 2007, 226(2): 1607-1622.
WU J, SHU C, ZHANG Y H. Simulation of incompressible viscous flows around moving objects by a variant of immersed boundary-lattice Boltzmann method [J]. International Journal for Numerical Methods in Fluids, 2010, 62(3): 327-354.
ROMA A M, PESKIN C S, BERGER M J. An adaptive version of the immersed boundary method [J]. Journal of Computational Physics, 1999, 153(2): 509-534.
GARZA J, MILLWATER H. Multicomplex newmark-beta time integration method for sensitivity analysis in structural dynamics [J]. AIAA Journal, 2015, 53(5): 1188-1198.
SUBBARAJ K, DOKAINISH M A. A survey of direct time-integration methods in computational structural dynamics: Ⅱ implicit methods [J]. Computers Structures, 1989, 32(6): 1387-1401.
BANO T, HEGNER F, HEINRICH M, et al. Investigation of fluid-structure interaction induced bending for elastic flaps in a cross flow [J]. Applied Sciences, 2020, 10(18): 6177.
ITO M R, DUAN Chengfang, WISSA A A. The function of the alula on engineered wings: a detailed experimental investigation of a bioinspired leading-edge device [J]. Bioinspiration Biomimetics, 2019, 14(5): 056015.
LAGRAVA D, MALASPINAS O, LATT J, et al. Advances in multi-domain lattice Boltzmann grid refinement [J]. Journal of Computational Physics, 2012, 231(14): 4808-4822.
HAN Jiakun, YUAN Zongjing, CHEN Gang. Effects of kinematic parameters on three-dimensional flapping wing at low Reynolds number [J]. Physics of Fluids, 2018, 30(8): 081901.
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