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Foam fractionation for effective removal of Pseudomonas aemglnosa from water body: Strengthening foam drainage by artificially inducing foam evolution

机译:泡沫分馏,用于从水体中有效去除假单胞菌AEMGLNOSA:通过人工诱导泡沫进化来强化泡沫排水

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摘要

Lack of microbial contamination is of great significance to drinking water safety and water reclamation. In this work, foam fractionation was employed to remove Pseudomonas aeruginosa (P. aeruginosa) from aqueous solution and dodecyl dimethyl betaine (BS12) was used as the collector. Since the attachment of strain cells on the bubble surface would impede the reflux of interstitial liquid in the plateau borders (PBs), a novel strategy in strengthening foam drainage was developed through artificially inducing foam evolution. Two gas distributors with different pore diameters had been mounted at the bottom of the column for regulating the radial distribution of bubble size in the foam phase. Experimental results indicated that gas diffuse and bubble coarsening could be significantly promoted by increasing the size difference among the adjacent bubbles. Bubble coalescence contributed to broadening the width of plateau borders, thereby avoiding the borders blockage by strain cells. During bubble coalescence, surfactant molecules would be partially shifted from the surface of small bubble towards that of large bubble due to the molecule density difference. The increase in surface excess of surfactant molecules on gas-liquid interface was conducive to improving foam stability. Under the suitable conditions of air flow rates of gas distributor with 0.125 mm of pore diameter 75 mL/min and gas distributor with 0.425 mm of pore diameter 125 mL/min, BS12 concentration 0.1 g/L, and P. aeruginosa concentration 2.0 x 104 CFU/mL, the removal percentage and enrichment ratio of P. aeruginosa were 99.6% and 10.6, respectively. This work is expected to provide some new light for strengthening foam drainage in the presence of solid particles and to facilitate the industrialization of foam fractionation in water treatment.
机译:缺乏微生物污染对饮用水安全和水回收具有重要意义。在这项工作中,使用泡沫分馏来从水溶液中除去假单胞菌铜绿假单胞菌(P.铜绿假单胞菌),并使用十二烷基二甲基甜菜碱(BS12)作为收集器。由于菌株细胞对气泡表面上的菌株的附着将妨碍高原边界(PBS)中的间质液体的回流,通过人工诱导泡沫进化来开发强化泡沫排水的新策略。两种具有不同孔径直径的气体分配器已安装在柱的底部,以调节泡沫相中泡沫尺寸的径向分布。实验结果表明,通过增加相邻气泡之间的尺寸差异,可以显着促进气体漫射和气泡粗化。泡泡聚结有助于拓宽高原边界的宽度,从而避免边界阻断应变细胞。在气泡聚结期间,由于分子密度差异,表面活性剂分子将从小气泡的表面部分地从小气泡的表面移位。气液界面上表面活性剂分子的表面过量的增加有利于改善泡沫稳定性。在适当的气体分配器空气流速条件下,孔径为0.125毫升,孔径为0.425mm孔径为0.425mm,BS12浓度为0.1g / L,和P.铜绿假单胞菌浓度2.0 x 104 CFU / mL,P.铜绿假单胞菌的去除率和富集率分别为99.6%和10.6。这项工作预计将提供一些新的光,以在固体颗粒存在下加强泡沫引流,并促进水处理中泡沫分馏的产业化。

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  • 来源
    《Journal of Environmental Management》 |2021年第1期|112628.1-112628.9|共9页
  • 作者单位

    School of Chemical Engineering and Technology Hebei University of Technology No. 8 Cuangrong Road Dingzi Gu Hongqiao District Tianjin 300130 China;

    School of Chemical Engineering and Technology Hebei University of Technology No. 8 Cuangrong Road Dingzi Gu Hongqiao District Tianjin 300130 China;

    State Key Laboratory of Green Chemical Engineering and Efficient Energy Saving School of Chemical Engineering Hebei University of Technology Tianjin 300130 China;

    School of Chemical Engineering and Technology Hebei University of Technology No. 8 Cuangrong Road Dingzi Gu Hongqiao District Tianjin 300130 China;

    School of Chemical Engineering and Technology Hebei University of Technology No. 8 Cuangrong Road Dingzi Gu Hongqiao District Tianjin 300130 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    P. aeruginosa removal; Foam drainage; Bubble size; Bubble coalescence; Process intensification;

    机译:P.铜绿假单胞菌去除;泡沫排水;泡沫尺寸;泡泡聚结;流程强化;

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