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Optimization setting control method based on BFO and CBR for laminar cooling water

机译:基于BFO和CBR的层流冷却水优化设定控制方法

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摘要

Aiming at the target optimization problem in the laminar cooling process, we proposed a laminar cooling water optimization setting control method, integrating improved bacterial foraging optimization (BFO) algorithm and case-based reasoning (CBR) technology. We construct two layers structure of dynamic optimization to realize offline optimization and online reasoning. The simulation results with industrial operating data showed the effectiveness in searching optimized cooling water consumption in varying working condition. The proposed method has the ability to adjust the water consumption setting value in time and the strip coiling temperature is controlled in the target range.
机译:针对层流冷却过程中的目标优化问题,提出了一种结合改进的细菌觅食优化(BFO)算法和基于案例推理(CBR)技术的层流冷却水优化设定控制方法。我们构建动态优化的两层结构,以实现离线优化和在线推理。具有工业运行数据的仿真结果表明,在变化的工作条件下搜索优化的冷却水消耗是有效的。所提出的方法能够及时调整耗水量设定值,并将带材卷取温度控制在目标范围内。

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