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Adaptive control of low-Reynolds number aerodynamics in uncertain environments: Part 2. Vortex dynamics and system modeling under stall

机译:不确定环境中低雷诺数空气动力学的自适应控制:第2部分。失速下的涡旋动力学和系统建模

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摘要

A major challenge in unsteady aerodynamics is to handle uncertain free-stream and maintain desired performance. Closed-loop flow control provides substantial opportunities to help accomplish this goal. Effective control of unsteady aerodynamics can substantially benefit from proper pairing of system modeling and control law so that the system nonlinearity can be adequately addressed. In this second part of the paper, the low-Reynolds number airfoil equipped with the dielectric barrier discharge (DBD) actuator is investigated to shed light on both flow physics and system dynamics. In this flow regime, combined with unsteady free-stream, the evolution of separation bubble can significantly influence the force evolution. Specifically, anisotropic bubble expansion, namely, rapid bubble spread, is explored and linked to the temporal and spatial scales caused by the free-stream disturbances. The initiation and duration of the spread as well as bubble's convection speed are closely related to the slope and magnitude of the disturbance. In addition, two criteria about static stall angle match well with the disturbance regimes proposed in the first part of the paper. Furthermore, the system's nonlinearity is assessed utilizing parameter estimate techniques, suggesting both stall vortex evolution and free-vortex shedding stages accompany significant changes in system parameter estimates.
机译:不稳定空气动力学的主要挑战是处理不确定的自由流并保持所需的性能。闭环流量控制为帮助实现此目标提供了大量机会。有效地控制非定常空气动力学可以从系统建模和控制规律的正确配对中受益,从而可以充分解决系统非线性问题。在本文的第二部分中,研究了配备介电势垒放电(DBD)致动器的低雷诺数翼型,以揭示流物理学和系统动力学。在这种流动状态下,结合不稳定的自由流,分离气泡的演化会显着影响力的演化。具体地说,研究了各向异性的气泡膨胀,即气泡的迅速扩散,并将其与自由流扰动引起的时空尺度联系起来。扩散的开始和持续时间以及气泡的对流速度与扰动的斜率和大小密切相关。另外,关于静态失速角的两个标准与本文第一部分中提出的扰动机制非常吻合。此外,利用参数估计技术评估了系统的非线性,这表明失速涡旋演化和自由涡旋脱落阶段都伴随着系统参数估计的显着变化。

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