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Optimal Surface Aeration Control in Full-Scale Oxidation Ditches through Energy Consumption Analysis

机译:基于能耗分析的全氧化沟最优表面曝气控制

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Oxidation ditches are popularly used in rural areas and decentralized treatment facilities where energy deficiency is of concern. Aeration control technologies are well established for diffusion systems in order to improve energy efficiency, but there are still challenges in their application in oxidation ditches because surface aerators have unique characteristics with respect to oxygen transfer and energy consumption. In this paper, an integral energy model was proposed to include the energy, aeration, and fluidic effects of surface aerators, by which the energy for aeration of each aerator can be estimated using online data. Two types of rotating disks with different diameters (1800 mm and 1400 mm) were monitored in situ to estimate the model parameters. Furthermore, a feedforward–feedback loop control strategy was proposed using the concept of energy analysis and optimization. The simplified control system was implemented in a full-scale Orbal oxidation ditch, achieving an approximately 10% saving in full-process energy consumption. The cost–benefit analysis and carbon emission assessment confirmed the economic feasibility and environmental contribution of the control system. The energy model can help process designers and operators to better understand and optimally control the aeration process in oxidation ditches.
机译:氧化沟广泛用于关注能源短缺的农村地区和分散处理设施。为了提高能量效率,已经为扩散系统建立了通气控制技术,但是在氧化沟中应用仍然存在挑战,因为表面曝气机在氧气传输和能量消耗方面具有独特的特性。在本文中,提出了一个积分能量模型,该模型包括表面曝气器的能量,曝气和流体效应,通过该模型可以使用在线数据估算每个曝气器的曝气能量。对两种直径不同的旋转盘(1800 mm和1400 mm)进行现场监测以估计模型参数。此外,使用能量分析和优化的概念提出了前馈-反馈回路控制策略。简化的控制系统在全面的Orbal氧化沟中实施,可节省约10%的全过程能耗。成本效益分析和碳排放评估证实了控制系统的经济可行性和对环境的贡献。能量模型可以帮助过程设计者和操作员更好地理解和最佳控制氧化沟中的曝气过程。

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