局部非线性非线性系统的分数阶自适应控制

J. Tar, A. Bencsik, K. Kozlowski
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引用次数: 2

摘要

本文将电磁伺服阀控制的差动液压缸视为具有局部非线性的非线性系统的典型。其中之一是流体力学的起源:系统的流动阻力与某一压力差的平方根成正比,该压力差在零处有无穷导数。另一种非线性是由活塞与气缸之间的摩擦力和附着力在活塞速度为零时的不连续行为引起的。这种行为是传统PID控制器难以控制的。此外,一般情况下,水动力参数的不确定性和变化使得为此类系统建立精确的模型是不现实的。Brocker和Lemmen分别基于扰动抑制原理和部分平整度原理提出了两种不同的差动液压缸控制方法。在每种情况下,都需要测量外部扰动力及其时间导数,并知道系统的精确模型。后来,Tar等人提出了一种替代的自适应方法,该方法不需要测量扰动力,也不需要知道气缸的确切参数。由于存在摩擦,这种方法拒绝使用时间导数,结果导致学习的短暂阶段非常繁忙。在本文中,提出了一种替代方法,将这种方法与使用计算的时间导数相结合,通过采用改变应用的导数的顺序来“拒绝”。这样就可以避免严酷的初始瞬态。通过仿真验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fractional order adaptive control for systems of locally nonlinearizable nonlinearities
In this paper electromagnetic servo valve controlled differential hydraulic cylinders are considered as paradigms of non-linear systems that have locally nonlinearizable nonlinearities. One of them is of hydrodynamic origin: the flow resistance of the system is proportional to the square root of certain pressure difference that has infinite derivative at zero. The other nonlinearity is caused by the discontinuous behavior of the friction and adhesion forces between the piston and the cylinder at zero piston velocity. Such a behavior is difficult to control by the traditional PID controllers. Furthermore, uncertainties and variation of the hydrodynamic parameters in general make it unrealistic to develop an accurate model for such systems. Brocker and Lemmen proposed two different control approaches for the differential hydraulic cylinders based on the disturbance rejection, and on the partial flatness principles, respectively. In each case it was necessary to measure the external disturbance force and its time-derivative as well as to know the exact model of the system. Later on Tar et al. proposed an alternative adaptive approach that does not require to measure the disturbance force and to know the exact parameters of the cylinder. This method rejected to use time-derivatives because of the presence of friction, and, as a consequence it resulted in a very hectic transient phase of learning. In this paper an alternative approach is presented that combines this approach with the use of calculated time-derivatives that are "rejected" by adoptively varying the order of the derivation applied. In this way the harsh initial transients can be evaded. The operation of the method is presented by simulations.
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