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The importance of first-principles, model-based steady-state gain calculations in model predictive control—a refinery case study

机译:第一性,基于模型的稳态增益计算在模型预测控制中的重要性-炼油厂案例研究

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This paper addresses the development and application of a first-principles, steady-state modeling framework in multivariable control applications. A rigorous approach based on detailed nonlinear models calibrated with reconciled online measurements is presented. Sensitivity analysis of this model is then applied in order to generate steady-state gain (inferential) models used in a DMC-based control application of a refinery unit. The benefits of using open-equation based inferential models to account for online product quality control are demonstrated in the context of a real-time model predictive control system, applied to a refinery. Finally, the direct economic impact of this application is assessed in a detailed quantitative manner and offered along with the relevant business process changes and operational practice recommendations for sustaining the benefits achieved.
机译:本文讨论了多变量控制应用中的第一性原理,稳态建模框架的开发和应用。提出了一种基于详细非线性模型的严格方法,该模型已通过协调的在线测量进行了校准。然后应用此模型的灵敏度分析,以生成在炼油厂基于DMC的控制应用中使用的稳态增益(推论)模型。在应用于炼油厂的实时模型预测控制系统的背景下,证明了使用基于开式方程式的推理模型进行在线产品质量控制的好处。最后,将以详细的定量方式评估此应用程序的直接经济影响,并将其与相关的业务流程更改和操作实践建议一起提供,以维持所获得的收益。

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