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Data-Based Online Optimal Temperature Tracking Control in Continuous Microwave Heating System by Adaptive Dynamic Programming

机译:自适应动态规划的连续微波加热系统基于数据的在线最优温度跟踪控制

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Control of continuous microwave heating system (CMHS) is truly a complex problem with time variance, uncertainty and nonlinearity, which becomes prohibitive to use a conventional model-based approach. To overcome this, a novel data-based optimal temperature tracking control is designed for CMHS in this paper. In order to obtain the complex dynamics of CMHS, a neural network model is first constructed driven by process data. After transforming the original temperature tracking problem into an error regulation problem, adaptive dynamic programming is introduced to deal with the regulation problem as well as to decrease operation cost. The design and operation of this controller depend mainly on the online data, and minor prior knowledge is required. Simulation results show that the proposed method can effectively control the CMHS in terms of temperature tracking and energy utilization.
机译:连续微波加热系统(CMHS)的控制确实是一个具有时间变化,不确定性和非线性的复杂问题,使用常规的基于模型的方法变得无法实现。为了克服这个问题,本文针对CMHS设计了一种基于数据的新型最佳温度跟踪控制。为了获得CMHS的复杂动态,首先要建立一个由过程数据驱动的神经网络模型。在将原始的温度跟踪问题转化为误差调节问题之后,引入了自适应动态规划来解决调节问题并降低运营成本。该控制器的设计和操作主要取决于在线数据,并且需要少量的先验知识。仿真结果表明,该方法可以有效地控制CMHS的温度跟踪和能量利用。

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