Wake interference effects on flow-induced vibration of flexible membrane wings

IF 4.1 2区 工程技术 Q1 MECHANICS Physics of Fluids Pub Date : 2024-07-03 DOI:10.1063/5.0210928
Guojun Li, Rajeev Kumar Jaiman, Biao Lei, Hongzhong Liu
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Abstract

This work investigates the effect of wake interference on the nonlinear coupled dynamics and aerodynamic performance of flexible membrane wings at a moderate Reynolds number. A high-fidelity computational aeroelastic framework is employed to simulate the flow-induced vibration of flexible membrane wings in response to unsteady vortex wake flows produced by an upstream stationary circular cylinder. The coupled dynamics of the downstream membrane are investigated at different gap ratios, aeroelastic numbers, and offset distances. The variations in flow features, membrane responses, and frequency characteristics are analyzed to understand the wake interference effect on membrane aeroelasticity. The results indicate that the aerodynamic performance and flight stability of the downstream membrane are degraded under the wake interference effect. Four distinct flow regimes are classified for the cylinder–membrane configuration, namely (i) single body flow, (ii) co-shedding I, (iii) co-shedding II, and (iv) detached vortex-dominated vibration, respectively. The mode transition is found to build new frequency synchronization between the flexible membrane and its own surrounding flows, or the wake flows of the cylinder, to adjust the aerodynamic performance and membrane vibration. This study sheds new light on membrane aeroelasticity in response to wake flows and enhances understanding of the fluid–membrane coupling mechanism. These findings can facilitate the development of next-generation bio-inspired drones that have high flight efficiency and robust flight stability in gusty flows.
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气流干扰对柔性膜翼流动诱导振动的影响
这项研究探讨了在中等雷诺数条件下,尾流干扰对柔性膜翼非线性耦合动力学和气动性能的影响。采用高保真计算气动弹性框架模拟了柔性膜翼在上游静止圆筒产生的非稳定涡流尾流作用下的流动诱导振动。研究了不同间隙比、气动弹性数和偏移距离下下游膜的耦合动力学。分析了流动特征、膜响应和频率特性的变化,以了解唤醒干扰对膜气动弹性的影响。结果表明,在唤醒干扰效应下,下游膜的气动性能和飞行稳定性都会下降。针对圆筒-膜构型划分了四种不同的流态,分别是:(i) 单体流;(ii) 共甩尾 I;(iii) 共甩尾 II;(iv) 分离涡主导振动。研究发现,模态转换可在柔性膜与自身周围流动或圆筒的尾流之间建立新的频率同步,从而调整气动性能和膜振动。这项研究揭示了膜在响应唤醒流时的气动弹性,并加深了对流体-膜耦合机制的理解。这些发现有助于开发在阵风流中具有高飞行效率和强大飞行稳定性的下一代生物启发式无人机。
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来源期刊
Physics of Fluids
Physics of Fluids 物理-力学
CiteScore
6.50
自引率
41.30%
发文量
2063
审稿时长
2.6 months
期刊介绍: Physics of Fluids (PoF) is a preeminent journal devoted to publishing original theoretical, computational, and experimental contributions to the understanding of the dynamics of gases, liquids, and complex or multiphase fluids. Topics published in PoF are diverse and reflect the most important subjects in fluid dynamics, including, but not limited to: -Acoustics -Aerospace and aeronautical flow -Astrophysical flow -Biofluid mechanics -Cavitation and cavitating flows -Combustion flows -Complex fluids -Compressible flow -Computational fluid dynamics -Contact lines -Continuum mechanics -Convection -Cryogenic flow -Droplets -Electrical and magnetic effects in fluid flow -Foam, bubble, and film mechanics -Flow control -Flow instability and transition -Flow orientation and anisotropy -Flows with other transport phenomena -Flows with complex boundary conditions -Flow visualization -Fluid mechanics -Fluid physical properties -Fluid–structure interactions -Free surface flows -Geophysical flow -Interfacial flow -Knudsen flow -Laminar flow -Liquid crystals -Mathematics of fluids -Micro- and nanofluid mechanics -Mixing -Molecular theory -Nanofluidics -Particulate, multiphase, and granular flow -Processing flows -Relativistic fluid mechanics -Rotating flows -Shock wave phenomena -Soft matter -Stratified flows -Supercritical fluids -Superfluidity -Thermodynamics of flow systems -Transonic flow -Turbulent flow -Viscous and non-Newtonian flow -Viscoelasticity -Vortex dynamics -Waves
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