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关于汞排放控制吸附技术的综述。

A Review on Adsorption Technologies for Mercury Emission Control.

机构信息

State Key Joint Laboratory of Environment Simulation and Pollution Control, School of Environment, Tsinghua University, Beijing, 100084, China.

State Environmental Protection Key Laboratory of Sources and Control of Air Pollution Complex, Beijing, 100084, China.

出版信息

Bull Environ Contam Toxicol. 2019 Jul;103(1):155-162. doi: 10.1007/s00128-019-02648-4. Epub 2019 Jun 27.

Abstract

This study summarized existing adsorption technologies for the removal of elemental mercury in the flue gas. Both carriers (e.g., active carbon (AC), pyrolyzed char, inorganic adsorbents and fly ash) and various modification methods (pore structure improvement, oxygen-containing functional groups addition and new active reagents impregnation) were compared to shed light on the development of future adsorption technology. AC and char possibly performed more mercury adsorption capacity (MAC) compared with fly ash and inorganic adsorbents since carbon atom existence was easier to form the active halogen groups (C-X) and oxygen containing groups. Though both pore structure improvement and chemical group formation improved the MAC of adsorbents, the chemical modification methods (oxygen-containing functional groups addition and new active reagents impregnation) were more effective. The impregnation of halogen, sulfur and metal chloride could distinctly form lots of active sites on the adsorbents and developed high effective mercury adsorbents. In the future, the adsorption researches possibly focus on SO and HO resistance of adsorbents, separable adsorbents, low-cost chemical modification methods, and utilization potential of fly ash.

摘要

本研究总结了现有用于去除烟气中元素汞的吸附技术。对载体(如活性炭(AC)、热解炭、无机吸附剂和飞灰)和各种改性方法(孔隙结构改善、含氧官能团添加和新型活性试剂浸渍)进行了比较,以期为未来的吸附技术发展提供启示。由于碳原子更容易形成活性卤族基团(C-X)和含氧基团,因此 AC 和炭可能比飞灰和无机吸附剂具有更高的汞吸附容量(MAC)。尽管孔隙结构改善和化学基团形成都提高了吸附剂的 MAC,但化学改性方法(含氧官能团添加和新型活性试剂浸渍)更为有效。卤素、硫和金属氯化物的浸渍可以在吸附剂上明显形成大量活性位点,并开发出高效的汞吸附剂。未来,吸附研究可能集中在吸附剂的 SO 和 HO 抗性、可分离吸附剂、低成本化学改性方法以及飞灰的利用潜力上。

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