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1.
正详细介绍了近几年采用尾部喷射、隔离板和小窄条控制件等3种方法对流向振荡柱体绕流旋涡脱落的抑制情况.在研究范围内存在非锁频和3种锁频旋涡脱落模式.风洞实验表明,尾部喷射对这4种模式都有抑制效果,窄条控制件对非锁频和2种锁频模式具有抑制效果,而隔离板仅对非锁频和1种锁频模式有效.在不同流动和振荡条件下找出了每种方法的有效控制区,研究了减阻和减少脉动力的效  相似文献   

2.
横向强迫振荡柱体尾流控制是柱体涡激振动控制的基础,在海洋、土木等工程中具有重要意义. 横向强迫振荡柱体尾流中存在一种锁频旋涡脱落模式,即在一个振荡周期内柱体上、下侧各脱落旋转方向相反的一对涡,称为2P模式. 本文将相对宽度b/D=0.32的窄条控制件置于横向强迫振荡柱体下游,对振幅比A/D=1.25, 无量纲振频f_e D/V_∞=0.22,雷诺数Re=1 200的2P模式旋涡脱落进行干扰,并通过改变控制件位置,研究旋涡的变化规律. 采用二维大涡模拟和实验验证方法进行研究,在控制件位置范围0.8≤X/D≤3.2, 0.4≤Y/D≤3.2内,得到了2P, 2S, P+S和另外6种新发现的旋涡脱落模式,并对各模式旋涡的形成过程作了详细描述. 在控制件位置平面上给出了各旋涡模式的存在区域,画出了旋涡脱落强度的等值线图,并发现在一个相当大的区域内,旋涡脱落强 度可减小一半以上,尾流变窄. 发现柱体大幅振荡引起的横向剪切流在旋涡生成中起关键作用. 探讨了控制件对横向剪切流的影响,分析了控制件在每种旋涡模式形成中的作用机制.   相似文献   

3.
横向强迫振荡柱体尾流控制是柱体涡激振动控制的基础,在海洋、土木等工程中具有重要意义.横向强迫振荡柱体尾流中存在一种锁频旋涡脱落模式,即在一个振荡周期内柱体上、下侧各脱落旋转方向相反的一对涡,称为2P模式.本文将相对宽度b/D=0.32的窄条控制件置于横向强迫振荡柱体下游,对振幅比A/D=1.25,无量纲振频f_eD/V_∞=0.22,雷诺数Re=1 200的2P模式旋涡脱落进行干扰,并通过改变控制件位置,研究旋涡的变化规律.采用二维大涡模拟和实验验证方法进行研究,在控制件位置范围0.8 X/D 3.2,0.4 Y/D 3.2内,得到了2P,2S,P+S和另外6种新发现的旋涡脱落模式,并对各模式旋涡的形成过程作了详细描述.在控制件位置平面上给出了各旋涡模式的存在区域,画出了旋涡脱落强度的等值线图,并发现在一个相当大的区域内,旋涡脱落强度可减小一半以上,尾流变窄.发现柱体大幅振荡引起的横向剪切流在旋涡生成中起关键作用.探讨了控制件对横向剪切流的影响,分析了控制件在每种旋涡模式形成中的作用机制.  相似文献   

4.
陈国孝  刘喆  邵传平 《力学学报》2021,53(7):1856-1875
桥跨结构发生颤振时的旋涡尾流可由二维强迫旋转振荡板绕流模拟. 在弦厚比B/H = 5的振荡板两侧对称地放置两个宽度比均为b/H = 0.33的窄条, 对尾流的锁频旋涡脱落进行控制. 采用数值模拟和实验验证方法, 对旋涡场、尾流平均和脉动速度, 以及板所受扭转力矩和升力进行研究, 研究的振幅范围β = 0° ~ 10°, 振频范围feH/V = 0 ~ 0.0857, 雷诺数Re = VH/V = 2800. 窄条位置分为板的前缘、中央和尾缘3种, 控制参数为窄条横向坐标y/H. 根据实验结果, 当窄条位置y/H在一定范围, 振幅β = 0° ~ 7.5°, 振频feH/V = 0 ~ 0.08时, 有控制和无控制尾流脉动速度功率谱主峰的比值远低于1, 最低可达0.3左右. 根据数值模拟结果, 当中央控制件位于y/H = ±1附近时, 在振幅β = 0° ~ 7.5°, 和一定频率范围内, 脉动扭转力矩均方根和升力均方根都有大幅下降, 最多可分别降低43%和80%. 引入第一和第二涡黏系数, 将尾流无规则脉动形成的湍流法向和切向应力, 分别与扰动速度幅值的法向和切向梯度相联系, 得到线性稳定性方程. 稳定性分析表明, 施加控制后, 最大扰动放大因子ωi max大幅降低, 扰动增长的频率范围显著收窄. 窄条改变尾流速度剖面形状并增大湍流涡黏系数, 从而减弱尾流的不稳定性.   相似文献   

5.
用窄条形控制件对截面宽度为B、厚度为H的矩形柱体绕流的旋涡脱落进行抑制.实验在风洞中进行, 实验范围为B/H=2.0~5.0,Re=VH/\nu=3.75× 103~1.05×104. 矩形柱的宽边B与来流平行, 窄条与柱体等长, 且两者轴线相互平行放置. 窄条宽度为b/H=0.5, 窄条厚度远小于其宽度; 窄条位置可变, 但窄条表面保持与来流垂直. 尾流脉动速度测量和流动显示结果表明: 当窄条位于一个有效区内时, 矩形柱体两侧的旋涡脱落被抑制; 而当窄条位于一个单侧有效区内时, 矩形体一侧的旋涡脱落被抑制, 在另一侧旋涡脱落却仍存在. 有效区范围从矩形体的上游某点一直延续到矩形体的下游某点. 单侧有效区将整个有效区围在其中. 有效区和单侧有效区范围随着B/H的增大而增大, 但随着Re的增大而减小.   相似文献   

6.
邵传平  王建明 《力学学报》2006,38(2):153-161
引入一个窄条作为控制件,在Re=3.0×10 3~2.0×10 4范围内对圆柱尾流进行控制实验。窄条长度与柱体长度相同,厚 度为柱体直径的 0.015~0.025倍,宽度为柱体直径的0.18倍. 窄条的两个长边 与柱中心轴平行, 而且三者共面. 控制参数为窄条位置, 可由间距(窄条到柱轴)比λ/(0.5D)和风向角β (窄 条面与来流的夹角)确定. 采用流动显示和热线测量方法,对控制和未控制尾流的流动状态, 平均速度分布和脉动速度情况,以及作用于柱体和控制件的总阻力进行了研究和比较. 研究结果证明, 当窄条位于柱体尾流中一定区域内时, 可有效抑制柱体两侧的旋涡脱落.有效控制后的尾流湍流度也相应减小. 在不同Re数下,找出了有效抑制旋涡脱落的窄条位置区域, 并用动量积分估计了作用于柱体和窄条上的总阻力与光圆柱阻力的比值及其随风向角的变 化. 对λ/(0.5D)=2.9情况,得到了减阻的风向角区域(β=0°~40°与180°附近)以及最大减阻率32%.以上事实表明,在近尾流局部区域施加小的干扰,可改变较高Re数圆柱尾流的整体性质.  相似文献   

7.
王赛  邵传平 《力学学报》2012,44(4):787-791
用隔离板对直径为D, 沿流向振荡的圆柱后涡脱落进行抑制. 隔离板放于圆柱尾流中心线上,控制参数包括隔离板长度L/D以及隔离板前缘到柱体振荡中心的距离G/D. 实验的雷诺数范围Re=VD/v=1.01×104~1.69×104,柱体折减振频范围feD/V=0~0.03, 柱体振幅固定为A/D=0.2. 风洞烟线显示和热线测量结果表明:当 G/D位于一个有效区域内时,可有效抑制振荡柱体尾流的旋涡脱落. 该有效区的大小随着隔离板板长的增大而增大, 随着Re数和圆柱振荡频率的增大而减小.  相似文献   

8.
钝体尾流控制机理及方法研究进展   总被引:6,自引:0,他引:6  
邵传平 《力学进展》2008,38(3):314-328
首先从涡脱落生成理论出发对钝体尾流控制方法进行了分类,并简单介绍了国内尾流控制研究情况. 之后介绍了我们用窄条或小方柱取代小圆柱后,对Strykowsky和Sreenivasan 控制方法的改进及其在高雷诺数下对圆柱和方柱尾流涡脱落的有效抑制情况, 并探讨了控制件钝度对抑制效果的影响.第3部分用实验数据对各个涡脱落生成模型做了分析与检验, 指出控制件方法的机理与改变钝体分离位置、减小钝体背压吸力、改变流动的展向相关性、 防止钝体两侧剪切层相互作用等无关,而与钝体近尾流速度剖面的局部修正及其稳定性的改变有关. 最后简单介绍了控制件方法今后研究工作展望及其工程应用前景.  相似文献   

9.
5∶1矩形柱体被认为是通用桥面几何形状的代表,其简化模型可以用来进行风振控制的研究。风嘴作为一种常用的流动控制装置,能起到减阻和增加矩形板气动稳定性的效果,但控制装置对强迫振荡柱体的控制机理仍缺乏研究。研究者通过对节段模型施加强迫振动,在实验模型前部施加边缘型对称型风嘴,研究控制装置对矩形板尾流旋涡脱落的影响。通过流动显示结果,总结了施加风嘴后的四种旋涡脱落模式。并通过快速傅里叶变化频域分析法,得到实验模型后缘X/D=10处的速度功率谱。施加风嘴控制能增大旋涡脱落频率,并抑制尾流旋涡脱落的能量。而数值模拟得到的不同实验工况下的升力均方根和力矩均方根显著减小,最大降幅分别为52%和23%,表明矩形板气动稳定性的提升和尾流不稳定性的减弱。  相似文献   

10.
钝体绕流的分隔板控制技术研究进展   总被引:1,自引:0,他引:1  
张力  丁林 《力学进展》2011,41(4):391-399
钝体是工程中一种常见结构,流体绕过钝体时产生的旋涡脱落易诱发结构振动,进而导致结构破坏.钝体后安装分隔板是一种典型的被动控制技术,分隔板推迟钝体尾流区剪切层之间的相互作用,进而有效改变钝体后旋涡脱落及尾迹特性,延长结构寿命,并且可以利用钝体一分隔板结构进行能量收集.本文全面回顾了利用分隔板进行流动控制和能量收集的研究及...  相似文献   

11.
流向振荡圆柱绕流的格子Boltzmann方法模拟   总被引:1,自引:0,他引:1  
龚帅  郭照立 《力学学报》2011,43(1):11-17
用一种新近发展起来的格子Boltzmann方法(LBM)在相对较小的雷诺数(Re \le 200)条件下模拟了不可压缩的流向振荡圆柱绕流问题, 考查了涡脱落模态和升阻力特性. 通过模拟, 在近尾流区发现了实验研究中已经发现的对称/反对称的涡脱落模态, 包括有些传统数值方法未发现的模态. 研究了频率锁定区域的范围及其与振幅的关系, 发现振幅越大, 发生锁定的频率区域越宽. 此外还对升阻力进行了定量意义的模拟,研究了振荡频率和振幅与升阻力的关系.   相似文献   

12.
Flow around an oscillating cylinder in a subcritical region are numerically studied with a lattice Boltzmann method(LBM). The effects of the Reynolds number,oscillation amplitude and frequency on the vortex wake modes and hydrodynamics forces on the cylinder surface are systematically investigated. Special attention is paid to the phenomenon of resonance induced by the cylinder oscillation. The results demonstrate that vortex shedding can be excited extensively under subcritical conditions, and the response region of vibration frequency broadens with increasing Reynolds number and oscillation amplitude. Two distinct types of vortex shedding regimes are observed. The first type of vortex shedding regime(VSR I) is excited at low frequencies close to the intrinsic frequency of flow, and the second type of vortex shedding regime(VSR II)occurs at high frequencies with the Reynolds number close to the critical value. In the VSR I, a pair of alternately rotating vortices are shed in the wake per oscillation cycle,and lock-in/synchronization occurs, while in the VSR II, two alternately rotating vortices are shed for several oscillation cycles, and the vortex shedding frequency is close to that of a stationary cylinder under the critical condition. The excitation mechanisms of the two types of vortex shedding modes are analyzed separately.  相似文献   

13.
The flow around a stationary circular cylinder modified by two synthetic jets positioned at the mean separation points is numerically studied. The Reynolds number based on the free-stream velocity and the circular cylinder diameter is Re=500. The focus is to present a novel way to suppress the lift fluctuations by changing the vortex shedding mode, and thus particular attention is paid to the interactions between the synthetic jets and wake shear layers and the resulting vortex dynamics. The overall influences of both momentum coefficient and excitation frequency are discussed. In some simulated cases, the vortex lock-on phenomenon is discovered, which causes the typical Kàrmàn type vortex shedding to be converted into the symmetric shedding modes, leading to the complete suppression of lift fluctuations. In other cases, the asymmetric shedding mode still dominates the wake evolution. Detailed vortical evolution for each typical wake pattern is analyzed to reveal the control mechanism. Additionally, the control effectiveness is evaluated, indicating that the present control strategy contributes an effective way to suppress the lift fluctuations and reduce the mean drag.  相似文献   

14.
张宇飞  肖志祥  符松 《力学学报》2007,39(3):408-416
通过求解采用ALE方法描述的运动坐标系Navier-Stokes方程组,分析均匀来流下雷诺 数为150的静止和流向振荡的圆柱绕流. 主要研究了强迫振荡频率和较大振幅比 (A/D=0.3-1.2)对圆柱升力、阻力变化特性以及涡脱落模态的影响. 研究表 明,流向振荡圆柱绕流存在多种涡脱落模态,如对称S以及反对称A-I, A-III, A-IV等多种形式;比较研究结果,拓展了各模态下对应的锁定区域,并将其分为5个 子区;A-I模态中圆柱受力较以前所知更复杂;通过分析计算结果,发现最大加速度 比Af_{c}^{2}/Df_{s0}^{2}可能是涡脱落模态(尤其是对称S模态)最有效的控制参数.  相似文献   

15.
Two-dimensional numerical simulation is performed to understand the effect of flow pulsation on the flow and heat transfer from a heated square cylinder at Re = 100. Numerical calculations are carried out by using a finite volume method based on the pressure-implicit with splitting of operators algorithm in a collocated grid. The effects of flow pulsation amplitude (0.2 ≤ A ≤ 0.8) and frequency (0 ≤ f p  ≤ 20 Hz) on the detailed kinematics of flow (streamlines, vorticity patterns), the macroscopic parameters (drag coefficient, vortex shedding frequency) and heat transfer enhancement are presented in detail. The Strouhal number of vortices shedding, drag coefficient for non-pulsating flow are compared with the previously published data, and good agreement is found. The lock-on phenomenon is observed for a square cylinder in the present flow pulsation. When the pulsating frequency is within the lock-on regime, time averaged drag coefficient and heat transfer from the square cylinder is substantially augmented, and when the pulsating frequency in about the natural vortex shedding frequency, the heat transfer is also substantially enhanced. In addition, the influence of the pulsating amplitude on the time averaged drag coefficient, heat transfer enhancement and lock-on occurrence is discussed in detail.  相似文献   

16.
The present paper describes a new active method for controlling vortex shedding from a circular cylinder in a uniform flow at medium Reynolds numbers. It uses rotary cylinder oscillations controlled by the feedback signal of a reference velocity in the cylinder wake. The effectiveness of this feedback control is evaluated by measuring the response of mean and fluctuating velocities in the cylinder wake, the spanwise correlation, the power spectrum, and the fluid forces acting on the cylinder. It is found that the velocity fluctuations and the fluid forces are both reduced by the feedback control with optimum values of the phase lag and feedback gain. The simultaneous flow visualization synchronized with the cylinder oscillation indicates the attenuation as well as the mechanisms of vortex shedding under the feedback control, which is due to the dynamic effect of cylinder oscillation on the vortex formation.  相似文献   

17.
In this paper, hydrodynamic force coefficients and wake vortex structures of uniform flow over a transversely oscillating circular cylinder beneath a free surface were numerically investigated by an adaptive Cartesian cut-cell/level-set method. At a fixed Reynolds number, 100, a series of simulations covering three Froude numbers, two submergence depths, and three oscillation amplitudes were performed over a wide range of oscillation frequency. Results show that, for a deeply submerged cylinder with sufficiently large oscillation amplitudes, both the lift amplitude jump and the lift phase sharp drop exist, not accompanied by significant changes of vortex shedding timing. The near-cylinder vortex structure changes when the lift amplitude jump occurs. For a cylinder oscillating beneath a free surface, larger oscillation amplitude or submergence depth causes higher time-averaged drag for frequency ratio (=oscillation frequency/natural vortex shedding frequency) greater than 1.25. All near-free-surface cases exhibit negative time-averaged lift the magnitude of which increases with decreasing submergence depth. In contrast to a deeply submerged cylinder, occurrences of beating in the temporal variation of lift are fewer for a cylinder oscillating beneath a free surface, especially for small submergence depth. For the highest Froude number investigated, the lift frequency is locked to the cylinder oscillation frequency for frequency ratios higher than one. The vortex shedding mode tends to be double-row for deep and single-row for shallow submergence. Proximity to the free surface would change or destroy the near-cylinder vortex structure characteristic of deep-submergence cases. The lift amplitude jump is smoother for smaller submergence depth. Similar to deep-submergence cases, the vortex shedding frequency is not necessarily the same as the primary-mode frequency of the lift coefficient. The frequency of the induced free surface wave is exactly the cylinder oscillation frequency. The trends of wave length variation with the Froude number and frequency ratio agree with those predicted by the linear theory of small-amplitude free surface waves.  相似文献   

18.
In the present experimental investigation the surface pressure distribution, vortex shedding frequency, and the wake flow behind a porous circular cylinder are studied when continuous suction or blowing is applied through the cylinder walls. It is found that even moderate levels of suction/blowing (5% of the oncoming streamwise velocity) have a large impact on the flow around the cylinder. Suction delays separation contributing to a narrower wake width, and a corresponding reduction of drag, whereas blowing shows the opposite behaviour. Both uniform suction and blowing display unexpected flow features which are analysed in detail. Suction shows a decrease of the turbulence intensity throughout the whole wake when compared with the natural case, whilst blowing only shows an effect up to five diameters downstream of the cylinder. The drag on the cylinder is shown to increase linearly with the blowing rate, whereas for suction there is a drastic decrease at a specific suction rate. This is shown to be an effect of the separation point moving towards the rear part of the cylinder, similar to what happens when transition to turbulence occurs in the boundary layer on a solid cylinder. The suction/blowing rate can empirically be represented by an effective Reynolds number for the solid cylinder, and an analytical expression for this Reynolds number representation is proposed and verified. Flow visualizations expose the complexity of the flow field in the near wake of the cylinder, and image averaging enables the retrieval of quantitative information, such as the vortex formation length.  相似文献   

19.
Vortex shedding resonance of a circular cylinder wake to a forced rotational oscillation has been investigated experimentally by measuring the velocity fluctuations in the wake, pressure distributions over the cylinder surface, and visualizing the flow field with respect to cylinder oscillations. The vortex shedding resonance occurs near the natural shedding frequency at small amplitude of cylinder oscillations, while the peak resonance frequency shifts to a lower value with an increase in oscillation amplitude. The drag and lift forces acting on the cylinder at fixed forcing Strouhal number indicate that the phase lag of fluid forces to the cylinder oscillations increases with an increase in oscillation amplitude, supporting the variation of resonance frequency with oscillation amplitude. The comparative study of the measured pressure distributions and the simultaneous flow visualizations with respect to cylinder rotation shows the mechanisms of phase lag, which is due to the strengthened vortex formation and the modification of the surface pressure distributions.  相似文献   

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