模型预测控制应用于工业蒸发过程的实时仿真

Ismail M. Fahmy, A. Nassar, K. El-Metwally
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引用次数: 0

摘要

化学工业中的许多过程都具有非线性、多变量相互作用、时滞和约束等特点。尿素工业的蒸发过程被认为是这些过程之一,对传统的控制策略提出了挑战。模型预测控制(MPC)是最有效的先进过程控制(APC),在工业中得到了广泛的应用。MPC提供了最佳的解决方案,以提高控制性能的最佳过程操作。本文采用MPC技术对某化肥厂尿素蒸发过程控制进行了动态建模、辨识和实时仿真。结果表明,与传统控制策略相比,MPC控制策略的控制性能有显著提高,特别是在电厂负荷变化时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Real-time simulation of applying model predictive control on an industrial evaporation process
A wide range of processes in chemical industry are characterized by the existence of nonlinear, multivariable interacting, time delay, and constraints properties. The evaporation process in urea industry is considered one of these processes and represents a challenge for the traditional control strategy. Model predictive control (MPC) is the most efficient advanced process control (APC) and has been extensively used in industry. MPC provides the best solution to improve the control performance for optimum process operation. This paper presents the dynamic modeling, identification and real-time simulation of urea evaporation process control in a fertilizer plant using MPC technology. The results showed a significant improvement of the control performance using MPC compared to the traditional control strategy especially during the plant load variation.
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