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High-fidelity profiling and modeling of heterogeneity in wastewater systems using milli-electrode array (MEA): Toward high-efficiency and energy-saving operation

机译:使用毫电极阵列(MEA)的废水系统的高保真性分析和异质性建模:朝着高效节能的方向发展

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摘要

High energy consumption is a critical problem for wastewater treatment systems currently monitored using conventional "single point" probes and operated with manual or automatic open-loop control strategies, exhibiting significant time lag. This challenge is addressed in this study by profiling the variation of three critical water quality parameters (conductivity, temperature and pH) along the depth of a reactor at high spatiotemporal resolution in a real-time mode using flat thin milli-electrode array (MEA) sensors. The profiling accurately captured the heterogeneous status of the reactor under transient shocks (conductivity and pH) and slow lingering shock (temperature), providing an effective dataset to optimize the chemical dosage and energy requirement of wastewater treatment systems. Transient shock models were developed to validate the MEA profiles and calculate mass transfer coefficients. Monte Carlo simulation revealed high-resolution MEA profiling combined with fast closed-loop control strategies can save 59.50% of energy consumption (Temperature and oxygen consumption controls) and 45.29% of chemical dosage, and reach 16.28% performance improvement over the benchmark (defined with ideal conditions), compared with traditional "single-point" sensors that could only monitor the entire system through a single process state. This study demonstrated the capability of MEA sensors to profile reactor heterogeneity, visualize the variation of water quality at high resolution, provide complete datasets for accurate control, and ultimately lead to energy-saving operation with high resilience. (C) 2019 Published by Elsevier Ltd.
机译:高能耗是目前使用常规“单点”探针进行监测并使用手动或自动开环控制策略进行操作的废水处理系统的关键问题,这显示出明显的时滞。通过使用扁平薄电极阵列(MEA)在实时模式下以高时空分辨率实时分析沿着反应堆深度的三个关键水质参数(电导率,温度和pH)的变化,从而解决了这一挑战传感器。该分析准确地捕获了在瞬态冲击(电导率和pH)和缓慢挥之不去的冲击(温度)下反应器的非均质状态,提供了有效的数据集,可优化废水处理系统的化学剂量和能源需求。开发了瞬态冲击模型以验证MEA轮廓并计算传质系数。蒙特卡洛模拟显示高分辨率MEA分析与快速闭环控制策略相结合可以节省59.50%的能耗(温度和氧气消耗控制)和45.29%的化学剂量,并且比基准性能提高16.28%(定义为与传统的“单点”传感器相比,传统“单点”传感器只能通过一个过程状态监视整个系统。这项研究证明了MEA传感器能够描述反应堆异质性,以高分辨率可视化水质变化,提供完整的数据集以进行精确控制并最终实现具有高弹性的节能运行。 (C)2019由Elsevier Ltd.发布

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