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Carbon dioxide adsorption in chemically activated carbon from sewage sludge

机译:污水污泥中化学活性炭中的二氧化碳吸附

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摘要

In this work, sewage sludge was used as precursor in the production of activated carbon by means of chemical activation with KOH and NaOH. The sludge-based activated carbons were investigated for their gaseous adsorption characteristics using CO2 as adsorbate. Although both chemicals were effective in the development of the adsorption capacity, the best results were obtained with solid NaOH (SBAT16). Adsorption results were modeled according to the Langmuir and Freundlich models, with resulting CO2 adsorption capacities about 56 mg/g. The SBAT16 was characterized for its surface and pore characteristics using continuous volumetric nitrogen gas adsorption and mercury porosimetry. The results informed about the mesoporous character of the SBAT16 (average pore diameter of 56.5 Å). The Brunauer-Emmett-Teller (BET) surface area of the SBAT16 was low (179 m2/g) in comparison with a commercial activated carbon (Airpel 10; 1020 m2/g) and was mainly composed of mesopores and macropores. On the other hand, the SBAT16 adsorption capacity was higher than that of Airpel 10, which can be explained by the formation of basic surface sites in the SBAT16 where CO2 experienced chemisorption. According to these results, it can be concluded that the use of sewage-sludge-based activated udcarbons is a promising option for the capture of CO2.ududImplications:udAdsorption methods are one of the current ways to reduce CO2 emissions. Taking this into account, sewage-sludge-based activated carbons were produced to study their CO2 adsorption capacity. Specifically, chemical activation with KOH and NaOH of previously pyrolyzed sewage sludge was carried out. The results obtained show that even with a low BET surface area, the adsorption capacity of these materials was comparable to that of a commercial activated carbon. As a consequence, the use of sewage-sludge-based activated carbons is a promising option for the capture of CO2 and an interesting application for this waste.
机译:在这项工作中,污水污泥被用作通过KOH和NaOH进行化学活化生产活性炭的前体。以CO2为被吸附物,研究了基于污泥的活性炭的气态吸附特性。尽管两种化学物质都能有效提高吸附能力,但使用固体NaOH(SBAT16)可获得最佳结果。根据Langmuir和Freundlich模型对吸附结果进行建模,得出的CO2吸附量约为56 mg / g。使用连续的体积氮气吸附和水银孔隙率法对SBAT16的表面和孔特征进行了表征。结果告知了SBAT16的介孔特性(平均孔径为56.5Å)。与商用活性炭(Airpel 10; 1020 m2 / g)相比,SBAT16的Brunauer-Emmett-Teller(BET)表面积低(179 m2 / g),主要由中孔和大孔组成。另一方面,SBAT16的吸附能力高于Airpel 10,这可以通过SBAT16中CO2发生化学吸附的基本表面部位的形成来解释。根据这些结果,可以得出结论,使用基于污泥的活性 udcarbons是捕获CO2的有前途的选择。 ud ud含义: ud吸附法是目前减少CO2排放的方法之一。考虑到这一点,生产了基于污泥的活性炭以研究其对CO2的吸附能力。具体地,对先前热解的污水污泥进行了KOH和NaOH的化学活化。获得的结果表明,即使具有低的BET表面积,这些材料的吸附能力也可与商业活性炭相当。因此,使用污水污泥基活性炭是捕获CO2的有前途的选择,并且是对此废物的有趣应用。

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