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Adaptive optimal control for a wastewater treatment plant based on a data-driven method

机译:基于数据驱动方法的污水处理厂自适应最优控制

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摘要

In order to optimize the operating points of the dissolved oxygen concentration and the nitrate level in a wastewater treatment plant (WWTP) benchmark, a data-driven adaptive optimal controller (DDAOC) based on adaptive dynamical programming is proposed. This DDAOC consists of an evaluation module and an optimization module. When a certain group of operating points is given, first the evaluation module estimates the energy consumption and the effluent quality in the future under this policy, and then the optimization module adjusts the operating points according to the evaluation result generated by the evaluation module. The optimal operating points will be found gradually as this process continues repeatedly. During the optimization, only the input-output data measured from the plant are needed, while a mechanistic model is unnecessary. The DDAOC is tested and evaluated on BSM1 (Benchmark Simulation Model No.1), and its performance is compared to the performance of a proportional-integral-derivative (PID) controller with fixed operating points under the full range of operating conditions. The results show that DDAOC can reduce the energy consumption significantly.
机译:为了优化废水处理厂(WWTP)基准中溶解氧浓度和硝酸盐水平的工作点,提出了一种基于自适应动态规划的数据驱动自适应最优控制器(DDAOC)。该DDAOC由评估模块和优化模块组成。当给出一组工作点时,评估模块首先根据此策略估算未来的能耗和废水质量,然后优化模块根据评估模块生成的评估结果来调整工作点。随着该过程不断重复,将逐渐找到最佳工作点。在优化过程中,仅需要从工厂测得的输入输出数据,而无需机械模型。 DDAOC在BSM1(基准仿真模型No.1)上进行了测试和评估,并将其性能与在整个工作条件下具有固定工作点的比例积分微分(PID)控制器的性能进行了比较。结果表明,DDAOC可以显着降低能耗。

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