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A Methodology for Data Based Root-cause Analysis for Process Performance Deviations in Continuous Processes

机译:基于数据的基于数据的方法,用于连续过程中的过程性能偏差的原因分析

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The surge of computational power and the increasing availability of data in the process industry result in a growing interest in data based methods for process modelling and control.In this contribution a concept is described that uses statistical methods to analyse the root-causes for deviations from baselines that are used for the monitoring of the resource efficiency of the production in dashboards.This is done by comparing historical data during resource efficient operation under similar process conditions with data during inefficient operation.Statistically significant deviations are identified,sorted by the likelihood of causing the performance deviation.The concept is applied to a reference model called Best Demonstrated Practice which is in use at INEOS in Cologne.It represents the most resource efficient process performance under given conditions.Deviations from efficient plant performance are analysed using the described concept and the results are given to the operators as a decision support tool,including reference values for the degrees of freedom under the control of the operators.This concept is already used in a root-cause analysis tool at INEOS in Cologne and detected energy savings of over 20% for specific cases.
机译:计算能力的激增和过程行业数据的增加可用性导致对基于数据的过程建模和控制的方法越来越兴趣。在此贡献中描述了一种使用统计方法来分析偏差的根本原因的概念用于监测仪表板中生产资源效率的基线。这是通过在效率低下操作期间在类似的过程条件下比较资源有效运行期间的历史数据来完成的。识别出具有显着的偏差,通过导致的可能性进行分类性能偏差。该概念应用于Cologne IneS中的最佳证明实践的参考模型。它代表了在给定条件下的最资源有效的过程性能。使用所描述的概念分析了有效的工厂性能的历义。结果是给运营商的决策支持工具,包括在运营商控制下的自由度的参考值。本概念已经在科隆INEOS的根本原因分析工具中使用,检测到特定情况超过20%的能量节省超过20%。

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