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PID Control With Higher Order Derivative Degrees for IPDT Plant Models

机译:针对IPDT工厂模型的更高阶导数度的PID控制

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In this paper, we discuss the main features of the generalized higher-order proportional-integrative-derivative control (HO-PID) based on the integral-plus-dead-time (IPDT) plant models. It was developed by extending the traditional PI-control to include $m$ th-order derivatives and $ngeq m$ th-order binomial series filters. The HO-PID control provides two additional degrees of freedom, which allow to appropriately modify the speed of the transients and the attenuation of the measurement noise, together with the closed-loop robustness. In this way, it pursues similar goals as an alternative fractional-order PID control. A broad family of the HO-PID controllers with the included low-pass filters is employed to solve a number of new problems. Their integrated suboptimal tuning, based on explicit formulas derived by the multiple real dominant pole (MRDP) method and evaluated by a novel approach that relates the speed of transients to the excessive input and output increments, has been simplified by introducing two integrated tuning procedures (ITPs). The main new finding is that HO-PID control enables faster transients by simultaneously reducing the negative effects of measurement noise and increasing the closed-loop robustness. A brief experimental evaluation using new sensitivity measures fully confirms the excellent HO-PID characteristics and shows that commissioning remains almost as simple as with the filtered PI-control.
机译:在本文中,我们讨论了基于积分加上的常用时间(IPDT)工厂模型的广义高阶比例综合 - 衍生物控制(HO-PID)的主要特征。它是通过扩展传统的PI-Control来包括<内联公式XMLNS:MML =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3来开发。 ORG / 1999 / XLINK“> $ M $ TH-阶导数和<内联公式XMLNS:MML =”http:// www.w3.org/1998/math/mathml“xmlns:xlink =”http://www.w3.org/1999/xlink“> $ n geq m $ Th-Order二项式筛选器。 HO-PID控制提供了两种额外的自由度,其允许适当地修改瞬态的速度和测量噪声的衰减以及闭环鲁棒性。通过这种方式,它将类似的目标作为替代的分数阶PID控制。使用包含的低通滤波器的Ho-PID控制器的广泛系列用于解决许多新问题。通过通过引入两个集成调谐过程(:)通过引入两个集成调谐过程(:)基于多个真正的主导极(MRDP)方法并通过新的方法评估的显式次优调整,并通过将瞬态的速度与过多输入和输出增量的速度进行评估。 ITPS)。主要的新发现是,HO-PID控制通过同时降低测量噪声的负面影响并增加闭环稳健性,使瞬态更快。使用新灵敏度测量的简要试验评估完全证实了优异的HO-PID特性,并表明调试几乎与过滤的PI控制一样简单。

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