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Cluster-based Reduced-Order Modeling to Capture Intermittent Dynamics of Interacting Wakes

机译:基于集群的降序建模,以捕获交互唤醒的间歇性动力学

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Interacting flows are found in a range of aviation-relevant relevant technologies, including flow control devices, engine combustors and augmentors, aero-optics flow interactions, and aerodynamic control surfaces. A somewhat limited literature on interacting jets and wakes indicates that the structure and dynamics of these flow-fields, including both large-scale coherent dynamics stemming from hydrodynamic instability and turbulent fluctuations, is fundamentally different from that of the single jet or single w ake flowfield. In particular, the interacting flowfields experience variations in vortex shedding frequency and phase that change as the distance between the adjacent jets or wakes is varied. The goal of this work is to understand large-scale, intermittent dynamics of turbulent interacting wakes and jets using an improved reduced-order modeling strategy, cluster-based reduced-order modeling, to capture these dynamics. We compare the dynamics of a three-wake system at two spacings to that of a single wake flowfield using both proper orthogonal decomposition (POD) as well as the cluster-based method (CROM). The CROM is able to capture the expected dynamics of the single wake, and the results are analogous to those from POD. However, CROM reveals a much more complicated set of dynamics in the interacting wake cases, including the existence of two sets of dynamics that intermittently appear, that the POD was unable to detect. CROM is used to quantify these dynamics and understand the effect of bluff-body spacing on the three-wake flowfields.
机译:在与航空相关的一系列相关技术中发现了相互作用的气流,包括流量控制设备,发动机燃烧室和增强器,航空光学流相互作用以及空气动力学控制面。关于射流和尾流相互作用的文献有限,表明这些流场的结构和动力学,包括由水动力不稳定性和湍流波动引起的大规模相干动力学,与单射流或单尾流流场的根本不同。 。特别地,相互作用的流场经历涡旋脱落频率和相位的变化,其随着相邻射流或尾流之间的距离的变化而变化。这项工作的目的是使用改进的降阶建模策略(基于簇的降阶建模)来了解湍流相互作用的尾流和喷气流的大规模,间歇性动力学,以捕获这些动力学。我们使用适当的正交分解(POD)以及基于聚类的方法(CROM),将两个间隔的三尾流系统的动力学与单个尾流流场的动力学进行了比较。 CROM能够捕获单次唤醒的预期动态,其结果类似于POD的结果。但是,CROM揭示了在相互作用的唤醒情况下更为复杂的一组动力学,包括存在间歇出现的两组动力学,而POD无法检测到这两组动力学。 CROM用于量化这些动力学并了解钝体间距对三尾流场的影响。

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