Effluent quality improvement in sequencing batch reactor-based wastewater treatment processes using advanced control strategies

Indranil Dey, S. R. Ambati, Prashant Navnath Bhos, Shirish Sonawane, Sridhar Pilli
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Abstract

The treatment of wastewater is highly challenging due to large fluctuations in flowrates, pollutants, and variable influent water compositions. A sequencing batch reactor (SBR) and modified SBR cycle-step-feed process (SSBR) configuration are studied in this work to effectively treat municipal wastewater while simultaneously removing nitrogen and phosphorus. To control the amount of dissolved oxygen in an SBR, three axiomatic control strategies (proportional integral (PI), fractional proportional integral (FPI), and fuzzy logic controllers) are presented. A biological process and relevant control algorithm has been designed using real-time plant data with the models of SBR and SSBR using the ASM2d mathematical model. On comparison, FPI showed a significant reduction in nutrient levels and added an improvement in effluent quality. The overall effluent quality is improved by 0.86% in FPI in comparison with PI controller. The SSBR, which was improved by precisely optimizing nutrient supply and aeration, establishes a delicate equilibrium. This refined method reduces oxygen requirements while reliably sustaining important biological functions. Focusing solely on the FPI controller's performance in terms of total air volume consumption, the step-feed SBR mechanism achieves an excellent 11.04% reduction in consumption.
利用先进的控制策略改善基于序批式反应器的废水处理工艺的出水水质
由于流量、污染物和进水成分的巨大波动,废水处理极具挑战性。本研究对序批式反应器(SBR)和改进的 SBR 循环-分步进料工艺(SSBR)配置进行了研究,以有效处理城市污水,同时去除氮和磷。为了控制 SBR 中的溶解氧量,提出了三种公理控制策略(比例积分(PI)、分数比例积分(FPI)和模糊逻辑控制器)。使用 ASM2d 数学模型,利用 SBR 和 SSBR 模型的实时工厂数据,设计了一个生物过程和相关控制算法。经比较,FPI 显著降低了营养物含量,并改善了出水水质。与 PI 控制器相比,FPI 的整体出水水质提高了 0.86%。通过精确优化营养物供应和曝气,SSBR 建立了微妙的平衡。这种改进方法在减少氧气需求的同时,还能可靠地维持重要的生物功能。仅从 FPI 控制器的总耗气量性能来看,分步进料 SBR 机制的耗气量降低了 11.04%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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