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移动床生物膜反应器和一体化固定膜活性污泥工艺中的氧传递。

Oxygen Transfer in Moving Bed Biofilm Reactor and Integrated Fixed Film Activated Sludge Processes.

机构信息

University of Michigan, Ann Arbor, MI, USA.

出版信息

Water Environ Res. 2018 Jul 1;90(7):615-622. doi: 10.2175/106143017X15054988926596. Epub 2017 Nov 17.

Abstract

A demonstrated approach to design the, so-called, medium-bubble air diffusion oxygen transfer system for moving bed biofilm reactor (MBBR) and integrated fixed film activated sludge (IFAS) processes is described. Operational full-scale biological water resource recovery systems treating municipal sewage, designed using this methodology, provide reliable service. Further improvement is possible, however, as knowledge gaps are filled and results in more rationally-based system designs. Pilot-scale testing demonstrates significant enhancement of oxygen transfer capacity from the presence of media. Establishment of the relationship in full-scale systems between diffuser submergence, aeration rate, and biofilm carrier fill fraction will enhance MBBR and IFAS aerobic process design, cost, and performance. Limited testing of full-scale systems prevents computation of alpha values and can be addressed by further full-scale testing under actual operating conditions. Control of MBBR and IFAS aerobic zone oxygen transfer systems can be optimized by recognizing that varying residual dissolved oxygen concentrations are needed, depending on operating conditions. Further application of oxygen transfer control approaches used in activated sludge systems, such as ammonia-based oxygen transfer system control, further improves MBBR and IFAS system energy efficiency.

摘要

描述了一种设计所谓中泡空气扩散氧气转移系统的方法,用于移动床生物膜反应器 (MBBR) 和集成固定膜活性污泥 (IFAS) 工艺。使用这种方法设计的处理城市污水的运行全规模生物水资源回收系统提供了可靠的服务。然而,随着知识空白的填补和更合理的系统设计结果,仍有可能进一步改进。中泡空气扩散氧气转移系统的存在使中泡空气扩散氧气转移系统的氧气转移能力得到了显著提高。在全规模系统中,建立扩散器淹没深度、曝气率和生物膜载体填充分数之间的关系,将增强 MBBR 和 IFAS 好氧工艺设计、成本和性能。全规模系统的有限测试限制了 alpha 值的计算,可通过在实际运行条件下进一步进行全规模测试来解决。通过认识到需要根据操作条件改变剩余溶解氧浓度,可以优化 MBBR 和 IFAS 好氧区氧气转移系统的控制。进一步应用在活性污泥系统中使用的氧气转移控制方法,例如基于氨的氧气转移系统控制,进一步提高了 MBBR 和 IFAS 系统的能源效率。

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