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A new separation and decontamination technique for heavy metal-laden sludges using sorptive/desorptive ion-exchange membranes.

机译:一种使用吸附/吸附离子交换膜分离重金属污泥的新方法。

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摘要

Various industrial processes produce wastes containing heavy metal compounds along with high suspended solids (up to 10% mass/volume). The heavy metals are most likely to be present in small amounts ({dollar}<{dollar}5% of the total mass or volume of the solid phase) as precipitates of salts with low solubility products, e.g., as hydroxides, carbonates, sulfides, etc., in the background of bulk amounts of innocuous solids such as sand, clay, calcite, humin, etc. The heavy metals may also be sorbed onto the ion-exchange sites of soil or other solid phase materials. Even though the percentage of heavy metal in the solid phase is very low, the waste sludge is most likely to be categorized as hazardous according to present environmental regulations and test protocols because of adverse effects to life and property by the leaching of heavy metals into the environment from it. Understandably, this problem has resulted in serious attempts by environmental engineering and science professionals to develop innovative technologies for the removal and recovery of these toxic heavy metals from the waste sources. Since the contaminant (heavy metal) constitutes a small fraction of the waste, an ideal treatment process to decontaminate the sludge/slurry would be to selectively remove the heavy metal present in the solid phase without affecting the remaining non-toxic materials. This would allow the remaining sludge to be labelled "non-toxic"; consequently it would require to fulfill much less stringent regulations as far as ultimate disposal is concerned.; Conventional treatment processes cannot meet the above listed criterion for efficient treatment, as discussed in detail in Chapter 1. This dissertation investigates a new class of composite sorptive/desorptive ion-exchange membranes and explores different scenarios where the material may be used in a reactor after understanding and tailoring the chemistry of the heterogeneous system comprising of the sludge, the composite membrane, and the aqueous phase in the reactor.; In the material studied, fine spherical beads ({dollar}<{dollar}100 {dollar}mu{dollar}m in diameter) of selective chelating exchangers or adsorbents are physically enmeshed or trapped in thin sheets ({dollar}approx{dollar}0.55 mm thick) of highly porous polytetrafluoroethylene (PTFE). These composite membranes, because of their thin-sheet like physical configuration, can be easily introduced into or withdrawn from a slurry reactor without any difficulty or fouling and the target solutes can be adsorbed onto the micro-adsorbents. Since the aim of this communication is to selectively remove heavy metals, the microbeads chosen were polymeric ion-exchangers containing covalently attached chelating functional group of iminodiacetate moiety.
机译:各种工业过程都会产生包含重金属化合物以及高悬浮固体(最高10%质量/体积)的废物。重金属最有可能以少量(例如氢氧化物,碳酸盐,硫化物)的盐的沉淀物形式(占固相总质量或体积的5%)出现(少量)。例如,在大量无害固体(例如沙子,粘土,方解石,腐殖质等)的背景下。重金属也可能吸附在土壤或其他固相材料的离子交换位点上。即使固相中的重金属百分比很低,但根据目前的环境法规和测试协议,废渣最有可能被归类为危险废物,因为重金属浸入废水中会对生命和财产产生不利影响。环境。可以理解,这个问题导致环境工程和科学专业人员进行了认真的尝试,以开发创新技术以从废物源中去除和回收这些有毒重金属。由于污染物(重金属)仅占废物的一小部分,对污泥/浆料进行去污的理想处理方法是有选择地除去固相中存在的重金属而不影响剩余的无毒材料。这样可以将剩余污泥标记为“无毒”;因此,就最终处置而言,它将需要执行不那么严格的法规。常规处理工艺不能满足上述有效处理标准,如第1章中详细讨论的那样。本论文研究了一类新型的复合吸附/脱附离子交换膜,并探讨了在不同条件下该材料可用于反应器的各种情况。了解和调整反应器中由污泥,复合膜和水相组成的多相系统的化学组成;在所研究的材料中,将选择性螯合交换剂或吸附剂的细球形珠子(直径为{dollar} <{dollar} 100 {dollar}μm{dollar} m)物理地嵌入或捕获在薄板中({dollar}约{dollar} 0.55毫米厚)的高孔聚四氟乙烯(PTFE)。这些复合膜由于具有类似薄片的物理构造,因此可以很容易地引入淤浆反应器中或从淤浆反应器中抽出而没有任何困难或结垢,并且目标溶质可以吸附到微吸附剂上。由于这种交流的目的是选择性除去重金属,因此选择的微珠是含有共价连接的亚氨基二乙酸酯部分螯合官能团的聚合物离子交换剂。

著录项

  • 作者

    Sengupta, Sukalyan.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Engineering Civil.; Environmental Sciences.
  • 学位 Ph.D.
  • 年度 1994
  • 页码 205 p.
  • 总页数 205
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;环境科学基础理论;
  • 关键词

  • 入库时间 2022-08-17 11:49:44

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