标题: | 渐进式消除定周期或变周期干扰之控制器设计 Alternative Pathway to the Asymptotic Rejection of Periodic Disturbances with Fixed or Varying Period |
作者: | 余祥华 Shiang-Hwua Yu 胡竹生 Jwu-Sheng Hu 电控工程研究所 |
关键字: | 反覆控制;主动式噪音控制;学习性控制;算子理论;Repetitive Control;Active Noise Control;Learning Control;Operator Theory |
公开日期: | 2000 |
摘要: | 反覆控制(Repetitive Control)能渐进式的追踪或消除周期性信号。本论文利用近代数学的算子理论(Operator Theory)重新推导反覆控制法则,此推导不但有助于瞭解其学习性控制的机制,更有助于发展出一个设计学习性或适应性演算法的通用方法。反覆控制包含两个重要的算子(Operator),其中一个算子为受控系统(Plant)的约略倒系统(Rough Inversion),此算子与反覆控制系统的稳定度与暂态反应速率息息相关。另一算子为延迟算子(Delay Operator),为了完美地渐进消除周期噪音,此延迟算子的延迟时间必须等于噪音的周期。基于这些观察,本论文设计一个可调的延迟器于一个快速收敛的反覆控制系统中,因而能有效消除变换周期的周期性噪音。与现有方法比较,此方法不但能有减低稳态误差,亦能保持系统的稳定度与暂态特性。将此方法应用于主动式管路噪音消除,其模拟结果证明此方法的优越性。 Repetitive control, widely used to asymptotically track or reject periodic signals, has conventionally been derived by the internal model principle. However, this dissertation presents a new constructive derivation of repetitive control via iterative operator inversion and the contraction mapping principle. This alternative derivation helps clarify the learning mechanism of repetitive control and also suggests a promising unified method to the design of learning or adaptive algorithms based on the contraction mapping principle. Based on the derivation, a generalized digital repetitive control with adjustable delay FIR filter is presented. The proposed method introduces a delay FIR filter in the repetitive control law, which optimally interpolates the signal between samples and thus effectively reconstructing the signal of the previous period. Accordingly, the proposed repetitive control can reject periodic disturbance whose period is not exactly an integer multiple of the sampling interval. The delay FIR filter is optimally synthesized in a reproducing kernel Hilbert space. The resulting optimal delay filter can be updated easily according to different signal periods. Thus it is specifically suitable for on-line tuning when the signal period is varying. This naturally leads to an alternative adaptive repetitive control algorithm for asymptotic tacking or rejecting periodic signals with varying period. Compared with the available tuning methods, this delay filter tuning method has excellent steady-state performance while maintaining fast transient and system robustness. The simulations on active noise cancellation within a duct confirm the superiority of this tuning method. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#NT890591103 http://hdl.handle.net/11536/67874 |
显示于类别: | Thesis |