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On Control Structure Design for a Walking Beam Furnace

机译:步进梁式炉的控制结构设计

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摘要

The aim of this article is to introduce a novel sparse controller design for the temperature control of an experimental walking beam furnace in steel industry. Adequate tracking of temperature references is essential for the quality of the heated slabs. However, the design of the temperature control is hindered by the multivariable (non-square) dynamic behavior of the furnace. These dynamics include significant loop interactions and time delays. Furthermore, a novel data-driven model, based on real life experimental data that relies on a subspace state representation in a closed loop approach is introduced. In the sequel, the derived model is utilized to investigate the controller's structure. By applying the relative gain array approach a decentralized feedback controller is designed. However, in spite of the optimal and sparse design of the controller, there exists interaction between loops. By analyzing the interaction between the inputs-outputs with the Σ2 Gramian-based interaction methodology, a decoupled multi-variable controller is implied. The simulation result, based on the experimental modeling of the furnace, shows that the controller can successfully decrease the interaction between the loops and track the reference temperature set-points.
机译:本文的目的是介绍一种新颖的稀疏控制器设计,用于钢铁工业中的实验步进式炉的温度控制。充分跟踪温度参考对于加热板坯的质量至关重要。但是,炉子的多变量(非正方形)动态行为阻碍了温度控制的设计。这些动力包括明显的回路相互作用和时间延迟。此外,介绍了一种基于真实实验数据的新型数据驱动模型,该模型依赖于闭环方法中的子空间状态表示。在续篇中,使用导出的模型来研究控制器的结构。通过采用相对增益阵列方法,设计了分散反馈控制器。但是,尽管控制器的设计是最佳且稀疏的,但回路之间仍存在交互作用。通过使用基于Σ2Gramian的交互方法分析输入-输出之间的交互,隐含了一个解耦的多变量控制器。基于炉子实验模型的仿真结果表明,控制器可以成功地减少回路之间的相互作用,并跟踪参考温度设定点。

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