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CCP-Based Plant-Wide Optimization and Application to the Walking-Beam-Type Reheating Furnace

机译:基于CCP的全厂优化及其在步进梁式加热炉中的应用

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In this paper, the integration of dynamic plant-wide optimization and distributed generalized predictive control (DGPC) is presented for serially connected processes. On the top layer, chance-constrained programming (CCP) is employed in the plant-wide optimization with economic and model uncertainties, in which the constraints containing stochastic parameters are guaranteed to be satisfied at a high level of probability. The deterministic equivalents are derived for linear and nonlinear individual chance constraints, and an algorithm is developed to search for the solution to the joint probability constrained problem. On the lower layer, the distributed GPC method based on neighborhood optimization with one-step delay communication is developed for on-line control of the whole system. Simulation studies for furnace temperature set-points optimization problem of the walking-beam-type reheating furnace are illustrated to verify the effectiveness and practicality of the proposed scheme.
机译:在本文中,提出了针对串联连接过程的全厂范围动态优化和分布式广义预测控制(DGPC)的集成。在顶层,具有经济和模型不确定性的全厂范围优化中采用了机会约束规划(CCP),其中保证以高概率满足包含随机参数的约束。推导了线性和非线性个体机会约束的确定性等价物,并开发了一种算法来寻找联合概率约束问题的解。在下层,开发了一种基于邻域优化和一步式延迟通信的分布式GPC方法,用于整个系统的在线控制。对步进梁式加热炉的炉温设定点优化问题进行了仿真研究,以验证该方案的有效性和实用性。

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