Systematic simplification methodology applied to an activated sludge reactor model

S. Aouaouda, M. T. Khadir, G. Mourot, J. Ragot
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引用次数: 4

Abstract

This article proposes a linearization technique for an activated sludge reactor model. Starting with a reduced model using three state variables related to the organic substrate, biomass and oxygen concentrations; the linearization approach is developed and validated. In a first step, sensitivity analysis is used to evaluate the model output sensitivity to changes with respect to the model input variables. The input variables identified as non-influent, can then be discarded, leading to a model simplification. In a second step, locally valid linear model are derived. The linearization is based on approximation of nonlinear terms by linear combinations of variables of interest. In the third step the unknown parameters in the linear terms are identified using an evolutionary algorithm. The main advantage of the proposed strategy is that it conserves the global structure of the original model. The obtained linear model allows easier studies of the state estimation and control schemes problems.
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系统简化方法在活性污泥反应器模型中的应用
本文提出了一种活性污泥反应器模型的线性化技术。从使用与有机底物、生物量和氧浓度相关的三个状态变量的简化模型开始;开发并验证了线性化方法。在第一步中,敏感性分析用于评估模型输出对模型输入变量变化的敏感性。识别为非影响的输入变量可以被丢弃,从而导致模型简化。第二步,导出局部有效的线性模型。线性化是基于通过感兴趣的变量的线性组合逼近非线性项。第三步,利用进化算法识别线性项中的未知参数。该策略的主要优点是保留了原模型的全局结构。所得到的线性模型可以更容易地研究状态估计和控制方案问题。
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