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Multi-Model- and Soft-Transition-Based Height Soft Sensor for an Air Cushion Furnace

机译:基于多模型和软过渡的气垫炉高度软传感器

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摘要

The floating height of the strip in an air cushion furnace is a key parameter for the quality and efficiency of production. However, the high temperature and high pressure of the working environment prevents the floating height from being directly measured. Furthermore, the strip has multiple floating states in the whole operation process. It is thus difficult to employ a single model to accurately describe the floating height in different states. This paper presents a multi-model soft sensor to estimate the height based on state identification and the soft transition. First, floating states were divided using a partition method that combined adaptive k-nearest neighbors and principal component analysis theories. Based on the identified results, a hybrid model for the stable state, involving a double-random forest model for the vibration state and a soft-transition model, was created to predict the strip floating height. In the hybrid model for the stable state, a mechanistic model combined thick jet theory and the equilibrium equation of force to cope with the lower floating height. In addition, a novel soft-transition model based on data gravitation that further reflects the intrinsic process characteristic was developed for the transition state. The effectiveness of the proposed approach was validated using a self-developed air cushion furnace experimental platform. This study has important value for the process prediction and control of air cushion furnaces.
机译:带材在气垫炉中的浮动高度是生产质量和生产效率的关键参数。但是,工作环境的高温和高压会阻止直接测量浮动高度。此外,带在整个操作过程中具有多个浮动状态。因此,难以采用单个模型来准确描述不同状态下的漂浮高度。本文提出了一种基于状态识别和软转换来估计高度的多模型软传感器。首先,使用结合了自适应k最近邻和主成分分析理论的分区方法来划分浮动状态。根据确定的结果,创建了一个稳定状态的混合模型,该模型包括一个用于振动状态的双随机森林模型和一个软过渡模型,以预测带钢的浮动高度。在稳态的混合模型中,一个机械模型结合了厚射流理论和力的平衡方程,以应对较低的漂浮高度。此外,针对过渡状态,开发了一种基于数据引力的新型软过渡模型,该模型进一步反映了内在过程特征。使用自行开发的气垫炉实验平台验证了该方法的有效性。该研究对气垫炉的工艺预测和控制具有重要价值。

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