Role of Steady State Data Reconciliation in Process Model Development

Barbara Farsang, S. Németh, J. Abonyi
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引用次数: 2

Abstract

In chemical and hydrocarbon industry operational efficiency is improved by model-based solutions. Historical process data plays an important role in the identification and verification of models utilized by these tools. Since most of the used information are measured values, they are affected by errors influencing the quality of these models. Data reconciliaton aims the reduction of random errors to enhance the quality of data used for model development resulting in more reliable process simulators. This concept is applied to the development and validation of the complex process model and simulator of an industrial hydrogenation system. The results show the applicability of the proposed scheme in industrial environment.
稳态数据协调在过程模型开发中的作用
在化工和油气行业,基于模型的解决方案提高了作业效率。历史过程数据在这些工具所使用的模型的识别和验证中起着重要的作用。由于大多数使用的信息是测量值,因此它们受到影响这些模型质量的误差的影响。数据协调旨在减少随机错误,以提高用于模型开发的数据质量,从而产生更可靠的过程模拟器。该概念应用于工业加氢系统复杂过程模型和模拟器的开发和验证。结果表明了该方案在工业环境中的适用性。
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