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Production modelling for holistic production control

机译:用于整体生产控制的生产建模

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Holistic production control is a concept that introduces production optimisation by employing model-based, closed-loop control of the principal production Performance Indicators (pPIs). The concept relies on the development of a simple black-box model that describes the relation between the main pPIs and the most influential input (manipulative) variables. In this article the modelling aspects of the holistic production control implementation are presented. The main steps of the production modelling procedure are described, such as data preprocessing, the definition of pPIs, the selection of input variables and the derivation of black-box models. Particular emphasis is given to a modelling approach based on neural networks and a corresponding modelling assistant tool, which has been developed to support the modelling procedure. The approach is illustrated on the Tennessee Eastman benchmark process, where neural network models for three main production performance indicators, i.e., costs, quality and production rate, are derived.
机译:整体生产控制是通过采用基于模型的主要生产绩效指标(pPI)的闭环控制来引入生产优化的概念。该概念依赖于一个简单的黑匣子模型的开发,该模型描述了主要pPI和最有影响力的输入(操纵)变量之间的关系。本文介绍了整体生产控制实现的建模方面。描述了生产建模过程的主要步骤,例如数据预处理,pPI的定义,输入变量的选择以及黑匣子模型的推导。特别强调了基于神经网络和相应的建模助手工具的建模方法,该工具已被开发来支持建模过程。该方法在田纳西州伊士曼基准流程中得到了说明,在该流程中,得出了三个主要生产绩效指标(即成本,质量和生产率)的神经网络模型。

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