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通过在低温下用三氯化铁进行热处理从污染土壤中去除汞。

Mercury removal from contaminated soil by thermal treatment with FeCl₃ at reduced temperature.

作者信息

Ma Fujun, Zhang Qian, Xu Duanping, Hou Deyi, Li Fasheng, Gu Qingbao

机构信息

State Key Laboratory of Environmental Criteria and Risk Assessment, Chinese Research Academy of Environmental Sciences, Beijing 100012, China.

College of Environmental Sciences and Engineering, Liaoning Technical University, Fuxin 123000, China.

出版信息

Chemosphere. 2014 Dec;117:388-93. doi: 10.1016/j.chemosphere.2014.08.012. Epub 2014 Sep 1.

Abstract

Thermal treatment has been used to remediate mercury-contaminated soils; however, existing thermal technologies use high temperatures (e.g., 600-800°C) and require high energy costs. Moreover, the treated soil is unfavorable for agricultural reuse. To address these issues, the present study developed a method for the thermal treatment of mercury-contaminated soils at a reduced temperature (400°C) by adding FeCl3. A FeCl3/Hg molar ratio of 100:1 in the soil was adopted as the optimum dosage of FeCl3 required to achieve maximum reduction of mercury. The mercury concentration in soils was successfully reduced to 0.8 mg kg(-)(1) when treated at 400°C for 60 min and the treated soil retained most of its original soil properties. FeCl3 addition during thermal treatment not only accelerated the volatilization of mercury in the easily removed fraction but also reduced the volatilization temperature of mercury in the hardly removed fraction. The adsorbable organic halogens and PCDD/Fs formed during thermal treatment with FeCl3 would not affect the soil reuse in agriculture. The thermal decontamination method reduces energy costs and leads to agricultural soil reuse, thus providing a greener and more sustainable remediation method for treating mercury-contaminated soil in future engineering applications.

摘要

热处理已被用于修复汞污染土壤;然而,现有的热技术使用高温(如600 - 800°C)且能源成本高。此外,处理后的土壤不利于农业再利用。为了解决这些问题,本研究开发了一种通过添加FeCl3在较低温度(400°C)下对汞污染土壤进行热处理的方法。采用土壤中FeCl3/Hg摩尔比为100:1作为实现汞最大还原所需的FeCl3最佳剂量。当在400°C下处理60分钟时,土壤中的汞浓度成功降低至0.8 mg kg(-1),且处理后的土壤保留了大部分原始土壤特性。热处理过程中添加FeCl3不仅加速了易去除部分汞的挥发,还降低了难去除部分汞的挥发温度。热处理过程中用FeCl3形成的可吸附有机卤素和多氯二苯并对二噁英/多氯二苯并呋喃不会影响土壤在农业中的再利用。这种热净化方法降低了能源成本并实现了农业土壤的再利用,从而为未来工程应用中处理汞污染土壤提供了一种更绿色、更可持续的修复方法。

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