论文标题
内部气缸流量不确定性的异常特征受到不确定旋转效果的影响
Anomalous Features in Internal Cylinder Flow Instabilities subject to Uncertain Rotational Effects
论文作者
论文摘要
我们研究了高速旋转圆柱体内部的流动动力学,在缸壁运动中引入了强大的对称性干扰因子。我们提出并制定了一个数学上强大的随机模型,以与不可压缩的Navier-Stokes方程的随机表示圆柱壁的旋转运动。我们采用了结合光谱/$ HP $元素方法和概率搭配方法的全面随机计算流体动力学框架来获得我们数学模型的高保真实现,以量化动态不确定性的传播,以传播动力学的兴趣量。我们观察到,建模的对称性干扰会导致壁引起的流动不稳。利用全球灵敏度分析方法,我们确定了我们提出的模型中不确定性的主要不确定性来源。接下来,我们对描述指纹和量度强烈,迅速发展的非高斯行为的指纹和测量的波动场进行定性和定量统计分析。我们声称,这种非高斯统计数据基本上出现和进化是由于最初是由于圆柱体破坏对称性旋转而触发的相干涡旋的加剧而导致的。我们表明,这种机制在流动动力学中会导致记忆效应,即从不稳定性的开始,从长远来看,在长期以来就可以观察到肠记录的时间标准的明显异常。我们的发现提出了一种有效的策略来利用受控的流动不稳定性,以增强工程应用中的湍流混合。
We study the flow dynamics inside a high-speed rotating cylinder after introducing strong symmetry-breaking disturbance factors at cylinder wall motion. We propose and formulate a mathematically robust stochastic model for the rotational motion of cylinder wall alongside the stochastic representation of incompressible Navier-Stokes equations. We employ a comprehensive stochastic computational fluid dynamics framework combining spectral/$hp$ element method and probabilistic collocation method to obtain high-fidelity realizations of our mathematical model in order to quantify the propagation of parametric uncertainty for dynamics-representative quantities of interests. We observe that the modeled symmetry-breaking disturbances cause a flow instability arising from the wall. Utilizing global sensitivity analysis approaches, we identify the dominant source of uncertainty in our proposed model. We next perform a qualitative and quantitative statistical analysis on the fluctuating fields characterizing the fingerprints and measures of intense and rapidly evolving non-Gaussian behavior through space and time. We claim that such non-Gaussian statistics essentially emerge and evolve due to an intensified presence of coherent vortical motions initially triggered by the flow instability due to symmetry-breaking rotation of the cylinder. We show that this mechanism causes memory effects in the flow dynamics in a way that noticeable anomaly in the time-scaling of enstrophy record is observed in the long run apart from the onset of instability. Our findings suggest an effective strategy to exploit controlled flow instabilities in order to enhance the turbulent mixing in engineering applications.