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Estimating the kinetic parameters of activated sludge storage using weighted non-linear least-squares and accelerating genetic algorithm

机译:加权非线性最小二乘和加速遗传算法估算活性污泥存储动力学参数

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摘要

In this study, weighted non-linear least-squares analysis and accelerating genetic algorithm are integrated to estimate the kinetic parameters of substrate consumption and storage product formation of activated sludge. A storage product formation equation is developed and used to construct the objective function for the determination of its production kinetics. The weighted least-squares analysis is employed to calculate the differences in the storage product concentration between the model predictions and the experimental data as the sum of squared weighted errors. The kinetic parameters for the substrate consumption and the storage product formation are estimated to be the maximum heterotrophic growth rate of 0.12 1/h, the yield coefficient of 0.44 mg COD_x/mg COD_S (COD, chemical oxygen demand) and the substrate half saturation constant of 16.9 mg/L, respectively, by minimizing the objective function using a real-coding-based accelerating genetic algorithm. Also, the fraction of substrate electrons diverted to the storage product formation is estimated to be 0.43 mg CODs-ro/mg COD_S. The validity of our approach is confirmed by the results of independent tests and the kinetic parameter values reported in literature, suggesting that this approach could be useful to evaluate the product formation kinetics of mixed cultures like activated sludge. More importantly, as this integrated approach could estimate the kinetic parameters rapidly and accurately, it could be applied to other biological processes.
机译:在这项研究中,加权非线性最小二乘分析和加速遗传算法相结合,以估算底物消耗和活性污泥的存储产物形成的动力学参数。一个存储产品形成方程式被开发出来,并被用来构造目标函数以确定其生产动力学。加权最小二乘分析用于计算模型预测和实验数据之间的存储产品浓度差异,作为平方误差的总和。估计底物消耗和存储产物形成的动力学参数为最大异养生长速率0.12 1 / h,0.44 mg COD_x / mg COD_S的屈服系数(COD,化学需氧量)和底物半饱和常数通过使用基于实数编码的加速遗传算法将目标函数减至最小,可分别获得16.9 mg / L的浓度。另外,转移至存储产物形成的底物电子的比例估计为0.43mg CODs-ro / mg COD_S。独立测试的结果和文献报道的动力学参数值证实了我们方法的有效性,这表明该方法可用于评估混合培养物(如活性污泥)的产物形成动力学。更重要的是,由于这种综合方法可以快速,准确地估算动力学参数,因此可以应用于其他生物学过程。

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