冶金过程操作员数字模拟器的数据生成

M. Lyakhovets, G. V. Makarov, A. S. Salamatin
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引用次数: 0

摘要

本文讨论了仿真训练和数字建模系统中受控和非受控冲击时间序列数据(基于现场数据)的模型实现的形成。由于信息和计算机技术、自动化研究系统、培训系统、数字建模技术(APM建模)以及数字对应物和先进控制系统的发展,这种模拟器正变得越来越普遍。形成的冲击实现可以表征正常工艺流程、紧急和应急前状态的情况,也可以表征操作员和技术人员培训、软件测试、算法研究和调优以及寻找最优控制动作的具体代表情况。以冶金工业为例,说明了基于非线性动力学模型和多变量动态数据库形成若干相互关联影响的可能性。描述流体介质热对流的洛伦兹系统被认为是撞击形成的一个模型。通过对现场数据的处理,分别确定了低频和高频分量的模型参数。接下来,使用归一化和继电器指数平滑操作形成训练样本。这些动作的实现是考虑到基于化学动力学模型的数据的相互相关性而形成的,并使用封闭动态系统形式的发生器在给定体积的有限样品上以所需的精度调整到指定的属性。在系数可调的多维生成自回归模型的基础上,建立了一个封闭动态系统形式的发电机。给出了高炉工艺参数(炉衬磨损程度、温度传感器读数和热流密度)数据序列的形成实例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data generation for digital simulators of metallurgical process operators
The article deals with the formation of model implementations of time series of data (based on in-situ data) of controlled and uncontrolled impacts in simulator-training and digital modeling systems. Such simulators are becoming increasingly widespread due to the development of information and computer technologies, automated research systems, training systems, digital modeling technologies (APM modeling), as well as digital counterparts and advanced control systems. The formed implementations of impacts can characterize situations of normal process flow, emergency and pre-emergency states, or specific representative situations for training operators and technological personnel, software testing, research and tuning of algorithms and search for optimal control actions. Using examples from the metallurgical industry, the possibility of forming several interrelated impacts based on models of nonlinear dynamics and multivariate dynamic databases is shown. The Lorentz system describing the thermal convection of a fluid medium is considered as a model of the impacts formation. The model parameters for the low- and high-frequency components are determined separately, by processing in-situ data. Next, a training sample is formed using normalization and relay-exponential smoothing operations. The implementations of the actions are formed taking into account the mutual correlation of data based on models of chemical dynamics and are adjusted to the specified properties on a limited sample of a given volume with the required accuracy using a generator in the form of a closed dynamic system. The generator in form of a closed dynamic system is built on the basis of a multidimensional generating autoregressive model with adjustable coefficients. An example of the formation of data series on technological parameters of a blast furnace (the degree of wear of the furnace lining, temperature sensor readings and heat flux density) is shown.
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