Economic model predictive control of the electric arc furnace using data-driven multi-rate models

Mudassir M. Rashid, P. Mhaskar, C. Swartz
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引用次数: 1

Abstract

This work considers the problem of economic model predictive control (EMPC) of electric arc furnaces (EAF), subject to the limited availability of process measurements and noise. The key issues addressed are: (1) the multi-rate sampling of process variables; and (2) the requirement of optimized operation that achieves desired product specifications and also minimizes the operating costs. To this end, we identify data-driven models that capture the temporal dynamics of process measurements sampled at different rates. The resulting multi-rate models are used to design a two-tiered predictive controller that enables achieving the target end-point while minimizing the associated costs. The EMPC is implemented on the EAF process and the closed-loop simulation results illustrate the improvement in economic performance over existing trajectory-tracking approaches.
基于数据驱动多速率模型的电弧炉经济模型预测控制
本文研究了电弧炉(EAF)的经济模型预测控制(EMPC)问题,该问题受到过程测量和噪声的限制。解决的关键问题是:(1)过程变量的多速率采样;(2)达到预期产品规格并使运行成本最小化的优化运行要求。为此,我们确定了数据驱动的模型,这些模型捕获了以不同速率采样的过程测量的时间动态。由此产生的多速率模型用于设计两层预测控制器,该控制器能够在最小化相关成本的同时实现目标端点。在EAF过程中实现了EMPC,闭环仿真结果表明,与现有轨迹跟踪方法相比,EMPC的经济性能得到了改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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