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首页> 外文期刊>European Journal of Mechanics, B. Fluids >An active flow control strategy for the suppression of vortex structures behind a circular cylinder
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An active flow control strategy for the suppression of vortex structures behind a circular cylinder

机译:抑制圆柱体后部涡流结构的主动流量控制策略

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An algorithm is proposed to model, predict and control vortex shedding behind a circular cylindrical configuration. The main ingredients of the algorithm include multiple-feedback sensors, actuators (with zero net mass injection) and a control strategy. Along with the mass and momentum conservation equations, a control equation is implemented to enable the desired flow control goals. A number of sensors are chosen in the downstream of the body to report the state of the flow. The role of externally controllable actuators on the fluid flow patterns past a circular configuration is assessed. To enable, zero net mass injection, two simple rotary type mechanical actuators are located at 120°, right behind the main cylinder. The popular finite volume based SIMPLE scheme is employed for the numerical calculations. As a precursor, the scheme simulates flow past an isolated cylinder, which is validated over a moderate range of Reynolds numbers. The design parameters of interest such as Strouhal number, drag and lift coefficients etc are used for the purpose of validation. The simulated flow fields are compared against the flow visualization study, which clearly demonstrates the efficacy of the actuators at discrete levels of rotation. The basic character of the flow is completely modified at U_c/U_∞ = 2.0 and Re = 100, where a complete suppression of vortex shedding is observed. This is tantamount to complete control of all the global instability modes. Fictitious tracer particles are released to visualize the vortex structures in the form of streaklines. The results clearly demonstrate the effectiveness of a rather simple active control algorithm in suppressing the vortex structures. All the relevant fluid flow features of the bluff-body fluid mechanics under the influence of actuators are studied in the sub-critical Reynolds number range of Re =100-300.
机译:提出了一种算法来建模,预测和控制圆柱构造后的涡流脱落。该算法的主要组成部分包括多重反馈传感器,执行器(净质量注入为零)和控制策略。除质量和动量守恒方程式外,还执行控制方程式以实现所需的流量控制目标。在身体的下游选择了许多传感器来报告流动状态。评估了外部可控执行器在经过圆形配置后对流体流动模式的作用。为了实现零净质量喷射,两个简单的旋转式机械执行器位于主缸正后方120°处。基于流行的有限体积的SIMPLE方案用于数值计算。作为先驱,该方案模拟通过隔离圆柱体的流动,并在中等范围的雷诺数范围内进行了验证。感兴趣的设计参数(例如Strouhal数,阻力和升力系数等)用于验证。将模拟的流场与流量可视化研究进行了比较,该研究清楚地表明了执行机构在离散旋转水平下的功效。在U_c /U_∞= 2.0和Re = 100时,对流的基本特征进行了完全修改,可以观察到涡流脱落的完全抑制。这等于完全控制了所有全局不稳定模式。释放虚拟示踪剂颗粒,以条纹线的形式可视化涡旋结构。结果清楚地证明了一种相当简单的主动控制算法在抑制涡旋结构方面的有效性。在Re = 100-300的亚临界雷诺数范围内,研究了执行机构影响下钝体流体力学的所有相关流体流动特征。

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