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Development of a novel submerged membrane electro-bioreactor for wastewater treatment

机译:新型用于污水处理的浸没式膜电生物反应器的研制

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摘要

The principle objectives of this research were to design and investigate a novel approach to generate an excellent quality effluent, while minimizing the size of the treatment unit and energy consumption. To achieve these objectives a submerged membrane electro-bioreactor (SMEBR) was designed and its performance was investigated. Membrane processes, electrokinetic phenomena, and biological processes take place simultaneously leading to the control of the problem of membrane fouling which has been considered one of the major challenges to widespread application of membrane bioreactor technology. This design is the first attempt to combine electrokinetic principles, using electro-coagulation (EC) processes and submerged membrane bioreactor in one reactor vessel. Both water quantity and quality were monitored through different experimental phases to verify the feasibility of the SMEBR system for wastewater treatment under various operating conditions. Firstly, a preliminary experimental phase was conducted on a small-scale electro-bioreactor (without the operation of the membrane module) to identify the best electrokinetic conditions in terms of the appropriate current density so as not to impede the biological treatment, and to determine the best exposure time of DC when it should be applied intermittently in the SMEBR system. DC field of 1 V/cm with an operational mode of 15 minutes ON/45 minutes OFF of DC power supply were found to be the adequate electrical conditions to operate the SMEBR system. Two different anode materials--iron and aluminum--were used to validate the SMEBR system for wastewater treatment. At the operating mode of 15 minutes ON/45 minutes OFF, the applied DC field in the SMEBR system enhanced the membrane filterability up to 16.6% and 21.3% using iron and aluminum electrodes respectively. However, the significant improvement in membrane filterability was 52.5% when using an aluminum anode at an operational mode of 15 minutes ON/105 minutes OFF, which indicated that the operational mode of DC supply is a key parameter in the operation of a SMEBR system. In terms of pollutants removal, the overall removal efficiency for COD was greater than 96% and greater than 98% for phosphorus. In conjunction, the removal of NH 3 -N was on average 70%. It should be emphasized that the phosphorous removal efficiency was higher than other studies on MBR without the use of electrokinetics. Furthermore, the effluent of the SMEBR treatment, using synthetic wastewater, had no color and no odor. The designed SMEBR system may find a direct application in the treatment of various wastewaters, including sewage, without an extensive pretreatment. Such a solution is required by several small municipalities, mining areas, agriculture facilities, military bases, and in cold regions. Finally, such a compact hybrid system can easily be adapted to a mobile unit
机译:这项研究的主要目标是设计和研究一种新颖的方法,以产生优质的废水,同时最小化处理单元的尺寸和能耗。为了实现这些目标,设计了一种浸没式膜电生物反应器(SMEBR),并对其性能进行了研究。膜过程,电动现象和生物过程同时发生,导致对膜结垢问题的控制,这已被认为是膜生物反应器技术广泛应用的主要挑战之一。该设计是在一个反应​​器容器中使用电凝(EC)工艺和浸没式膜生物反应器将电动原理相结合的首次尝试。通过不同的实验阶段对水量和水质进行了监测,以验证SMEBR系统在各种运行条件下进行废水处理的可行性。首先,在小型电动生物反应器上进行了初步的实验阶段(无需运行膜组件),以根据适当的电流密度确定最佳的电动条件,从而不妨碍生物处理,并确定在SMEBR系统中间歇使用DC时的最佳DC暴露时间。发现直流电源的工作模式为15分钟打开/ 45分钟关闭的1 V / cm的直流磁场是操作SMEBR系统的适当电气条件。两种不同的阳极材料-铁和铝-已用于验证SMEBR系统用于废水处理的有效性。在15分钟ON / 45分钟OFF的工作模式下,在SMEBR系统中施加的DC场使用铁和铝电极分别将膜过滤能力提高了16.6%和21.3%。但是,当使用铝阳极以15分钟开/ 105分钟关的运行模式使用时,膜过滤性能的显着提高为52.5%,这表明直流电源的运行模式是SMEBR系统运行的关键参数。就污染物的去除而言,COD的总去除效率大于96%,而磷的去除效率大于98%。结合起来,NH 3 -N的去除平均为70%。应该强调的是,在不使用电动学的情况下,除磷效率要高于其他对MBR的研究。此外,使用合成废水的SMEBR处理废水没有颜色也没有气味。设计的SMEBR系统无需大量预处理即可直接用于各种废水(包括污水)的处理。几个小型市政,矿区,农业设施,军事基地和寒冷地区都需要这种解决方案。最后,这种紧凑的混合动力系统可以轻松地适应移动单元

著录项

  • 作者

    Bani-Melhem Khalid Qasem;

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  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 en
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