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Pilot-scale hybrid constructed wetlands for the treatment of cooling tower water prior to its desalination and reuse

机译:试验规模杂交制成的湿地用于在脱盐和再利用之前处理冷却塔水

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摘要

Cooling towers are responsible for a large part of the industrial fresh water withdrawal, and the reuse of cooling tower water (CTW) effluents can strongly lower industrial fresh water footprints. CTW requires desalination prior to being reused, but various CTW components, such as total organic carbon (TOC), conditioning chemicals and total suspended solids (TSS) hamper physico-chemical desalination technologies and need to be removed from the CTW. A cost-efficient and robust pre-treatment is thus required, which can be provided by constructed wetlands (CWs). The present study is the first study that determined the CTW pre-treatment efficiency of hybrid-CWs and the impact of winter season and biocides in the CTW on the pre-treatment efficiency. The most efficient CW flow type and dominant removal mechanisms for CW components hampering physico-chemical desalination were determined. Subsurface flow CWs removed PO_4~(3-), TSS and TOC as a result of adsorption and filtration. Vertical subsurface flow CWs (VSSF-CW) excelled in the removal of benzotriazole as a result of aerobic biodegradation. Horizontal subsurface flow CWs (HSSF-CW) allowed the denitriflcation of NO_3~- due to their anaerobic conditions. Open water CWs (OW-CWs) did not contribute to the removal of components that hamper physico-chemical desalination technologies, but do provide water storage options and habitat. The biological removal processes in the different CW flow types were negatively impacted by the winter season, but were not impacted by concentrations of the biocides glutaraldehyde and DBNPA that are relevant in practice. For optimal pre-treatment, a hybrid-CW, consisting of an initial VSSF-CW followed by an OW-CW and HSSF-CW is recommended. Future research should focus on integrating the hybrid-CW with a desalination technology, e.g. reverse osmosis, electrodialysis or capacitive ionization, to produce water that meets the requirements for use as cooling water and allow the reuse of CTW in the cooling tower itself.
机译:冷却塔对工业淡水的大部分负责,冷却塔水(CTW)流出物的再利用能够强烈降低工业淡水占地面积。在重复使用之前,CTW需要脱盐,但各种CTW组分,例如总有机碳(TOC),调节化学品和总悬浮固体(TSS)妨碍物理化学脱盐技术,并且需要从CTW中除去。因此需要一种成本效益和稳健的预处理,其可以由构造的湿地(CWS)提供。本研究是第一项研究,确定杂交CWS的CTW预处理效率和冬季季节和杀菌剂在CTW上的预处理效率上的影响。确定了妨碍了妨碍了物理化学脱盐的CW分量最有效的CW流量和显性去除机制。由于吸附和过滤,地下流量CWS除去PO_4〜(3-),TSS和TOC。由于有氧生物降解,垂直地下流量CWS(VSSF-CW)表现出优异的苯并三唑。水平地下流量CWS(HSSF-CW)允许NO_3〜 - 由于它们的厌氧条件,允许脱氮。开放式水CWS(OW-CWS)没有促使妨碍物理化学脱盐技术的组件,但确实提供了储水选择和栖息地。不同CW流动类型中的生物去除方法受到冬季的负面影响,但不会受到在实践中相关的杀菌剂谷氨酸谷氨酸谷氨酸谷氨酸的浓度影响。为了获得最佳预处理,建议由初始VSSF-CW组成的混合CW,然后是OW-CW和HSSF-CW组成。未来的研究应专注于将混合CW与海水淡化技术集成在一起,例如,反渗透,电渗析或电容电离,生产符合用作冷却水的要求的水,并允许在冷却塔本身中重用CTW。

著录项

  • 来源
    《Journal of Environmental Management》 |2020年第1期|110972.1-110972.10|共10页
  • 作者单位

    Institute for Biodiversity and Ecosystem Dynamics (IBED) University of Amsterdam P.O. Box 94248 1092 GE Amsterdam the Netherlands Department of Environmental Technology Wageningen University P.O. Box 17 6700 EV Wageningen the Netherlands;

    Department of Environmental Technology Wageningen University P.O. Box 17 6700 EV Wageningen the Netherlands;

    Department of Environmental Technology Wageningen University P.O. Box 17 6700 EV Wageningen the Netherlands;

    Department of Environmental Technology Wageningen University P.O. Box 17 6700 EV Wageningen the Netherlands;

    Department of Environmental Technology Wageningen University P.O. Box 17 6700 EV Wageningen the Netherlands;

    Department of Environmental Technology Wageningen University P.O. Box 17 6700 EV Wageningen the Netherlands;

    Institute for Biodiversity and Ecosystem Dynamics (IBED) University of Amsterdam P.O. Box 94248 1092 GE Amsterdam the Netherlands;

    Department of Environmental Technology Wageningen University P.O. Box 17 6700 EV Wageningen the Netherlands;

    Institute for Biodiversity and Ecosystem Dynamics (IBED) University of Amsterdam P.O. Box 94248 1092 GE Amsterdam the Netherlands KWR Water Research Institute Chemical Water Quality and Health P.O. Box 1072 3430 BB Nieuwegein the Netherlands;

    Department of Environmental Technology Wageningen University P.O. Box 17 6700 EV Wageningen the Netherlands;

  • 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

    Removal mechanisms; Phosphate; Nitrate; Benzotriazole; Winter season; Biocides;

    机译:去除机制;磷酸盐;硝酸盐;苯并拉唑;冬季;杀生物剂;

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