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An integrated identification and control design methodology for multivariable process system applications

机译:用于多变量过程系统应用程序的集成式识别和控制设计方法

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摘要

We present a way to take advantage of the favorable asymptotic properties of ARX estimators to develop an integrated methodology for identification and controller design for multivariable process plants. This method relies on well-established numerical tools and builds on an engineer's existing process and statistical intuition. Specifically, the ARX estimate serves as a suitable intermediate model for the design and analysis of MIMO process control systems. Guidelines for the design of pseudo-random binary sequence signals that take advantage of the engineer's prior knowledge of the process time constants are presented. Control-relevant model reduction is performed on elements of the ARX model to obtain low-order models conforming to the IMC-PID tuning rules. A simple analysis technique is used to assess stability of the decentralized and decoupled strategies. These techniques and full multivariable control are applied to the Shell heavy oil fractionator problem and the Weischedel-McAvoy distillation column model, respectively.
机译:我们提出一种利用ARX估计器的有利渐近特性来开发用于多变量过程工厂的识别和控制器设计的集成方法的方法。这种方法依靠完善的数值工具,并以工程师现有的过程和统计直觉为基础。具体而言,ARX估计用作MIMO过程控制系统的设计和分析的合适中间模型。提出了利用工程师对过程时间常数的先验知识来设计伪随机二进制序列信号的指南。对ARX模型的元素执行与控制相关的模型简化,以获得符合IMC-PID调整规则的低阶模型。一种简单的分析技术用于评估分散和分离策略的稳定性。这些技术和完全多变量控制分别应用于壳牌重油分馏塔问题和Weischedel-McAvoy蒸馏塔模型。

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