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Particle Swarm Optimization Based Tuning of a Modified Smith Predictor for Mold Level Control in Continuous Casting

机译:基于粒子群优化的改进式史密斯预测因子对模具水平控制在连续铸造中的优化

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Mold level variations are a serious productivity and quality problem in continuous casting process. This work proposes a level control structure based on the Astrom's modified Smith predictor able to improve the reduction of the bulging effect. Unlike conventional methods, this control strategy decouples the disturbance rejection from the setpoint response and therefore can be independently optimized. Within this scheme, the bulging rejection specifications are formulated as a H_∞ problem and the tuning parameters are designed through a particle swarm optimization approach. Simulation results confirm that the proposed architecture is more effective than the ones currently implemented in real plants.
机译:模具水平变化是连续铸造过程中的严重生产力和质量问题。这项工作提出了一种基于ASTROR修改的史密斯预测因子的水平控制结构,能够改善凸出效果的减少。与传统方法不同,该控制策略从设定点响应与设定值响应的干扰抑制耦合,因此可以独立地优化。在该方案中,将膨胀抑制规范配制成H_∞问题,通过粒子群优化方法设计调谐参数。仿真结果证实,拟议的架构比现实植物中目前实施的架构更有效。

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