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Hybrid Dynamic Model of Anoxic-Aeration Biological Wastewater Treatment Plant

机译:厌氧曝气生物废水处理厂混合动力模型

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Due to high complex of the biological wastewater treatment, it is difficult to develop an accurate mathematics model. A hybrid dynamic modeling in both parallel and serial configuration was used in an anoxic-aeration activated sludge process. In the hybrid model, case-based reasoning (CBR) system is placed in series with a mechanistic model, which was the Activated Sludge Model No. 1 (ASM1) by the International Water Association (IWA); whereas the CBR system was used to identify the key kinetic and stoichiometric parameter at the different conditions. A neural network in parallel configuration compensates for the known difference between the results of a purely mechanistic model and the process data. The proposed method was applied in the shenyang wastewater treatment plant. Simulation results demonstrate the predictions of the hybrid model were significantly improved.
机译:由于生物废水处理的复杂性,很难建立精确的数学模型。在厌氧曝气活化污泥工艺中使用了并行和串行配置的混合动力模型。在混合模型中,基于案例的推理(CBR)系统与机械模型串联放置,该模型是国际水协会(IWA)的1号活性污泥模型(ASM1);而CBR系统用于识别不同条件下的关键动力学和化学计量参数。并行配置的神经网络补偿了纯机械模型的结果与过程数据之间的已知差异。该方法在沉阳污水处理厂得到了应用。仿真结果表明,该混合模型的预测得到了显着改善。

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