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A physics-based approach to flow control using system identification

机译:基于物理的基于流的系统识别方法

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摘要

Control of amplifier flows poses a great challenge, since the influence of environmental noise sources and measurement contamination is a crucial component in the design of models and the subsequent performance of the controller. A modelbased approach that makes a priori assumptions on the noise characteristics often yields unsatisfactory results when the true noise environment is different from the assumed one. An alternative approach is proposed that consists of a data-based systemidentification technique for modelling the flow; it avoids the model-based shortcomings by directly incorporating noise influences into an auto-regressive (ARMAX) design. This technique is applied to flow over a backward-facing step, a typical example of a noise-amplifier flow. Physical insight into the specifics of the flow is used to interpret and tailor the various terms of the auto-regressive model. The designed compensator shows an impressive performance as well as a remarkable robustness to increased noise levels and to off-design operating conditions. Owing to its reliance on only timesequences of observable data, the proposed technique should be attractive in the design of control strategies directly from experimental data and should result in effective compensators that maintain performance in a realistic disturbance environment.
机译:放大器流量的控制提出了巨大的挑战,因为环境噪声源和测量污染的影响是模型设计和控制器后续性能的关键组成部分。当实际噪声环境与假定的噪声环境不同时,对噪声特性进行先验假设的基于模型的方法通常会产生不令人满意的结果。提出了一种替代方法,该方法包括用于建模流程的基于数据的系统识别技术。通过将噪声影响直接纳入自回归(ARMAX)设计中,它避免了基于模型的缺点。这项技术适用于反向步骤的流,这是噪声放大器流的典型示例。对流程细节的物理洞察力可用于解释和调整自回归模型的各个术语。设计的补偿器表现出令人印象深刻的性能以及对增加的噪声水平和非设计工作条件的出色耐用性。由于其仅依赖于可观察数据的时间序列,因此所提出的技术应直接从实验数据设计控制策略时具有吸引力,并应产生可在实际干扰环境中保持性能的有效补偿器。

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