首页> 外文期刊>Journal of environment informatics >Stochastic Evolutionary-Based Optimization for Rapid Diagnosis and Energy-Saving in Pilot- and Full-Scale Carrousel Oxidation Ditches
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Stochastic Evolutionary-Based Optimization for Rapid Diagnosis and Energy-Saving in Pilot- and Full-Scale Carrousel Oxidation Ditches

机译:基于随机进化的优化用于中试和大型卡鲁塞尔氧化沟的快速诊断和节能

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摘要

Energy consumption is a primary issue needed to be considered for wastewater treatment targeting qualified effluent. In this paper, a hybrid model is proposed for rapid diagnosis of operational conditions meeting requirements of discharge standards and energy saving in the pilot- and full-scale Carrousel Oxidation Ditches (ODs). Based on a three-dimensional (3D) three-phase computational fluid dynamics (CFD) model, we developed an artificial neural network (ANN) model with back propagation algorithm and an accelerating genetic algorithm (AGA) model to achieve real-time simulation and system optimization in the Carrousel ODs. By incorporating the 3D-CFD and multi-site ANN models, the hybrid model provided reasonable predictions of liquid flow, sludge sedimentation and water quality in the Carrousel ODs. With help of the AGA model based on evolution theory, system optimization could be reached to meet multiple purposes such as energy saving, water-quality improving and normal sludge distribution, which was demonstrated that a 31% saving in total energy could possibly be made under an optimum operating condition compared to the existing operating condition in a full-scale OD.
机译:能耗是针对以合格废水为目标的废水处理需要考虑的主要问题。本文提出了一种混合模型,用于快速诊断满足排放标准要求的运行条件,并在中试和全尺寸Carrousel氧化沟(OD)中节省能源。在三维(3D)三相计算流体动力学(CFD)模型的基础上,我们开发了具有反向传播算法和加速遗传算法(AGA)模型的人工神经网络(ANN)模型,以实现实时仿真和Carrousel OD中的系统优化。通过结合3D-CFD和多站点ANN模型,该混合模型为Carrousel OD中的液体流量,污泥沉降和水质提供了合理的预测。借助基于进化理论的AGA模型,可以达到系统优化的目的,从而达到节能,改善水质和正常污泥分布等多种目的,这表明在节能减排的前提下,可以节省31%的总能源。与满量程OD中的现有操作条件相比,最佳操作条件。

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