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Dynamic behavior of the adsorption, activated sludge and combined activated sludge-adsorption process for treatment of cheese whey wastewater

机译:吸附,活性污泥及联合活性污泥-吸附工艺处理干酪乳清废水的动力学行为

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Treatment of cheese whey wastewater (CWW) in terms of chemical oxygen demand (COD) removal by adsorption, activated sludge (AS), and combination of these two processes was investigated. The equilibrium and kinetic data for adsorption of organics available in CWW onto three types of powdered activated carbons (PACs) were successfully described by hybrid Langmuir-Freundlich and pseudo-second-order models, respectively. The results indicated that AS-PAC combined system outperformed individual AS process in different COD concentrations. The most significant result was observed at the 7,500 mg/L COD concentration with the broom sorghum PAC (BSPAC) with a PAC dose of 4 g/L which could improve COD removal efficiency from 52.3% for AS to 63.8% for AS-PAC system. The most substantial result in this study was demonstration of the PAC bioregeneration mechanism in AS-PAC process. Dynamic behavior of the AS, PAC adsorption, and AS-PAC process was modeled in terms of a set of coupled differential equations. An optimization procedure was followed to obtain the model adjustable parameters that showed the desorption index (K-des) for AS-PAC process was more than the value that was obtained for adsorption process. Also, in AS-PAC process, the maximum specific adsorption capacity of PAC decreased.
机译:研究了通过吸附,活性污泥(AS)以及这两个过程的组合去除化学需氧量(COD)来处理干酪乳清废水(CWW)。分别通过混合Langmuir-Freundlich模型和拟二阶模型分别成功描述了CWW中有机物吸附到三种类型的粉末状活性炭(PAC)上的平衡和动力学数据。结果表明,在不同的COD浓度下,AS-PAC组合系统的性能优于单个AS工艺。在扫帚高粱PAC(BSPAC)和PAC剂量为4 g / L的情况下,在7,500 mg / L的COD浓度下观察到了最显着的结果,这可以将COD的去除效率从AS的52.3%提高到AS-PAC系统的63.8%。 。这项研究中最实质的结果是证明了AS-PAC过程中PAC的生物再生机制。 AS,PAC吸附和AS-PAC过程的动力学行为是根据一组耦合的微分方程建模的。遵循最优化程序以获得模型可调参数,该参数显示AS-PAC工艺的脱附指数(K-des)大于吸附工艺获得的值。另外,在AS-PAC工艺中,PAC的最大比吸附容量降低。

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