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Adaptive control methods for non-linear self-excited systems.

机译:非线性自激系统的自适应控制方法。

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摘要

Self-excited systems are open loop unstable plants having a nonlinearity that prevents an exponentially increasing time response. The resulting limit cycle is induced by any slight disturbance that causes the response of the system to grow to the saturation level of the nonlinearity. Because there is no external disturbance, control of these self-excited systems requires that the open loop system dynamics are altered so that any unstable open loop poles are stabilized in the closed loop.; This work examines a variety of adaptive control approaches for controlling a thermoacoustic instability, a physical self-excited system. Initially, a static feedback controller loopshaping design and associated system identification method is presented. This design approach is shown to effectively stabilize an unstable Rijke tube combustor while preventing the creation of additional controller induced instabilities. The loopshaping design method is then used in conjunction with a trained artificial neural network to demonstrate stabilizing control in the presence of changing plant dynamics over a wide variety of operating conditions. However, because the ANN is designed specifically for a single combustor/actuator arrangement, its limited portability is a distinct disadvantage.; Filtered-X least mean squares (LMS) adaptive feedback control approaches are examined when applied to both stable and unstable plants. An identification method for approximating the relevant plant dynamics to be modeled is proposed and shown to effectively stabilize the self-excited system in simulations and experiments. The adaptive feedback controller is further analyzed for robust performance when applied to the stable, disturbance rejection control problem. It is shown that robust stability cannot be guaranteed because arbitrarily small errors in the plant model can generate gradient divergence and unstable feedback loops.; Finally, a time-averaged-gradient (TAG) algorithm is investigated for use in controlling self-excited systems such as the thermoacoustic instability. The TAG algorithm is shown to be very effective in stabilizing the unstable dynamics using a variety of controller parameterizations, without the need for plant estimation information from the system to be controlled.
机译:自激系统是开环不稳定的设备,具有非线性特性,可防止时间响应呈指数增长。任何导致系统响应增加到非线性饱和水平的轻微扰动都会引起极限循环。因为没有外部干扰,所以对这些自激系统的控制要求改变开环系统的动力学特性,以便使任何不稳定的开环极点都在闭环中稳定下来。这项工作研究了各种用于控制热声不稳定性的自适应控制方法,一种物理自激系统。首先,提出了一种静态反馈控制器回路整形设计及相关的系统辨识方法。该设计方法显示出可以有效地稳定不稳定的Rijke管燃烧器,同时防止产生额外的控制器引起的不稳定性。然后,将环路整形设计方法与受过训练的人工神经网络结合使用,以证明在各种操作条件下不断变化的工厂动态条件下的稳定控制。但是,由于ANN是专门为单个燃烧器/执行器布置而设计的,因此其便携性有限是一个明显的缺点。当同时应用于稳定和不稳定工厂时,将检查Filtered-X最小均方(LMS)自适应反馈控制方法。提出了一种用于近似模拟要建模的相关植物动力学的识别方法,该方法在模拟和实验中有效地稳定了自激系统。当将其应用于稳定的干扰抑制控制问题时,将进一步分析自适应反馈控制器的鲁棒性能。结果表明,由于工厂模型中任意小的误差都会产生梯度发散和不稳定的反馈回路,因此不能保证鲁棒的稳定性。最后,研究了时间平均梯度(TAG)算法,用于控制自激系统,例如热声不稳定性。 TAG算法被证明在使用各种控制器参数设置来稳定不稳定动态方面非常有效,而无需从要控制的系统获得工厂估算信息。

著录项

  • 作者

    Vaudrey, Michael Allen.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Mechanical.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 p.929
  • 总页数 215
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

  • 入库时间 2022-08-17 11:46:59

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