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Ion Exchange for Nutrient Recovery Coupled with Biosolids-Derived Biochar Pretreatment to Remove Micropollutants

机译:离子交换用于营养回收,结合生物固体衍生的生物炭预处理以去除微量污染物

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摘要

Wastewater, especially anaerobic treatment effluent, contains high ammonia nitrogen (NH4-N) and inorganic orthophosphate (PO4-P), which necessitate additional treatment to meet stringent discharge regulations. Ion exchange regeneration is a process that can be adopted for not only removing but also recovering nutrients. However, recovering nutrients by ion exchange from nutrient-rich effluents that also contain micropollutants (which typically pass through anaerobic treatment as well) may result in subsequent problems, since micropollutants could end up in ion exchange effluent, regenerant, or recovered fertilizer products. Micropollutant removal by a nonselective adsorbent, such as biosolids-derived biochar, before nutrient recovery processes would mitigate potential risks. The objective of this research was to evaluate the capability of biosolids-derived biochar as a pretreatment step for separating micropollutants from nutrient-rich water before ion exchange for nutrient recovery. In the presence of ammonium and phosphate, both pristine and regenerated biosolids-derived biochar could effectively adsorb triclosan (TCS) and estradiol (E2), and to a lesser extent, sulfamethoxazole (SMX) in batch sorption experiments. On the other hand, nutrient ions were not effectively adsorbed by biosolids-derived biochar. A continuous flow-through system consisting of columns in series filled with biochar, LayneRT, and then clinoptilolite was operated to test selective removal of micropollutants and nutrients in a flow-through system. The biochar column achieved more than 80% removal of influent TCS and E2, thereby reducing the chances of micropollutants being adsorbed by ion exchangers. Sulfamethoxazole removal through the biochar column was only 50%, indicating that biosolids-derived biochar would have to be optimized in the future for hydrophilic micropollutant removal. Influent nutrients were not effectively removed by the biochar column, but were captured in their respective selective ion exchanger columns. This research revealed that biosolids-derived biochar could be employed before ion exchange resins for removal of micropollutants from nutrient-rich water.
机译:废水,特别是厌氧处理废水,含有高氨氮(NH4-N)和无机正磷酸盐(PO4-P),因此必须进行额外处理才能满足严格的排放规定。离子交换再生是不仅可以去除营养而且可以恢复营养的过程。但是,通过离子交换从也含有微量污染物(通常也要经过厌氧处理)的富含营养的废水中回收营养可能会导致后续问题,因为微量污染物可能最终会变成离子交换废水,再生剂或回收的肥料产品。在营养物回收过程之前,可以通过非选择性吸附剂(例如源自生物固体的生物炭)去除微污染物,以减轻潜在风险。这项研究的目的是评估生物固体衍生生物炭作为离子交换交换养分之前从富营养水中分离微量污染物的预处理步骤的能力。在存在铵盐和磷酸盐的情况下,在分批吸附实验中,原始的和再生的生物固体来源的生物炭都可以有效地吸附三氯生(TCS)和雌二醇(E2),以及次要程度的磺胺甲恶唑(SMX)。另一方面,源自生物固体的生物炭不能有效地吸收营养离子。一个连续的流通系统,由串联填充生物炭,LayneRT和斜发沸石的柱组成,以测试流通系统中微污染物和养分的选择性去除。生物炭色谱柱可将进水TCS和E2去除80%以上,从而减少了离子交换剂吸附微量污染物的机会。通过生物炭柱去除磺胺甲恶唑的比例仅为50%,这表明将来必须对源自生物固体的生物炭进行优化,以去除亲水性微污染物。进水营养不能被生物炭柱有效去除,而是被捕获在各自的选择性离子交换柱中。这项研究表明,在离子交换树脂去除营养丰富的水中的微污染物之前,可以使用源自生物固体的生物炭。

著录项

  • 来源
    《Environmental Engineering Science》 |2018年第12期|1340-1348|共9页
  • 作者单位

    Marquette Univ, Dept Civil Construct & Environm Engn, 1637 West Wisconsin Ave, Milwaukee, WI 53233 USA;

    Marquette Univ, Dept Civil Construct & Environm Engn, 1637 West Wisconsin Ave, Milwaukee, WI 53233 USA;

    Marquette Univ, Dept Civil Construct & Environm Engn, 1637 West Wisconsin Ave, Milwaukee, WI 53233 USA;

    Marquette Univ, Dept Civil Construct & Environm Engn, 1637 West Wisconsin Ave, Milwaukee, WI 53233 USA;

    Marquette Univ, Dept Civil Construct & Environm Engn, 1637 West Wisconsin Ave, Milwaukee, WI 53233 USA|AEESP, Washington, DC USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    adsorption; ammonium; phosphate; pyrolysis; wastewater treatment;

    机译:吸附;铵;磷酸盐;热解;废水处理;
  • 入库时间 2022-08-18 03:59:05

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