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首页> 外文期刊>Process Biochemistry >Forecasting the effect of feast and famine conditions on biological sulphate reduction in an anaerobic inverse fluidized bed reactor using artificial neural networks
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Forecasting the effect of feast and famine conditions on biological sulphate reduction in an anaerobic inverse fluidized bed reactor using artificial neural networks

机译:使用人工神经网络预测节食和饥荒条件对厌氧逆流化床反应器中生物硫酸盐还原的影响

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The longevity and robustness of bioreactors used for wastewater treatment is determined by the activity of the microorganisms under steady and transient loading conditions. Two identical continuously operated inverse fluidized bed bioreactors (IFB), IFB R1 and IFB R2, were tested for sulphate removal under the same operating conditions for 140 d (Periods I-IV). Later, IFB RI was used as the control reactor (Period V), while IFB R2 was operated under feast (Period V-A) and famine (Period V-B) feeding conditions for 66 d. The sulphate removal efficiency was comparable in both IFB, <20% in Period I and similar to 70% during Periods II, III and IV. The robustness of the IFB was evident when the sulphate removal efficiency remained comparable during the feast Period (67 +/- 15%) applied to IFB R2 compared to continuous feeding Periods (Period IV (71 +/- 4%) for IFB R2 and Period V (61 +/- 15%) for IFB R1). The IFB performance was modelled using a three-layered artificial neural networks (ANN) model (5-11-3) and a sensitivity analysis, the sulphate removal was found to be dependent on the COD:sulphate ratio. Besides, the robustness, resilience and adaptation time of the IFB were affected by the degree of mixing and the hydraulic retention time. (C) 2017 Elsevier Ltd. All rights reserved.
机译:用于废水处理的生物反应器的寿命和耐用性取决于稳定和短暂负载条件下微生物的活性。测试了两个相同的连续运行的逆流化床生物反应器(IFB)IFB R1和IFB R2在相同的操作条件下140 d的硫酸盐去除率(时段I-IV)。后来,将IFB RI用作对照反应器(时期V),而IFB R2在盛宴(时期V-A)和饥荒(时期V-B)的进料条件下运行66 d。在两个IFB中,硫酸盐去除效率均相当,在I期<20%,在II,III和IV期接近70%。当在IFB R2的盛宴期(67 +/- 15%)上的硫酸盐去除效率与IFB R2和IVF的连续喂食期(IV期(71 +/- 4%))相比,IFB的去除效率保持可比时,IFB的坚固性就很明显。期间V(IFB R1为61 +/- 15%)。使用三层人工神经网络(ANN)模型(5-11-3)和敏感性分析对IFB性能进行建模,发现硫酸盐的去除取决于COD:硫酸盐的比率。此外,IFB的坚固性,弹性和适应时间还受混合程度和水力停留时间的影响。 (C)2017 Elsevier Ltd.保留所有权利。

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