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Biochar derived from corn stalk and polyethylene co-pyrolysis: characterization and Pb(ii) removal potential

机译:生物炭来自玉米茎和聚乙烯共热分解:表征和Pb(ii)去除电位

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摘要

Biochar is widely used as adsorbents for gaseous or liquid pollutants due to its special pore structure. Previous studies have shown that the adsorption performance of untreated biomass pyrolysis crude carbon is poor, which can be improved by optimizing physicochemical properties such as pore structure and surface area. The study focused on the co-pyrolysis of skins, pith, and leaves with polyethylene and potassium hydroxide modification to adjust the quality of the biochar, compared with raw materials of corn stalks without separation. The physical and chemical properties of the biochar were analyzed and the adsorption effect, adsorption isotherms, and kinetics of Pb(ii) removal were investigated. Results demonstrated that co-pyrolysis of biomass and polyethylene increase the yield of biochar with an average increase of about 20%. Polyethylene brought high aromaticity, high calorific value and stable material structure to biochar. Potassium hydroxide modification increased its specific surface area and made the pore structure of biochar more uniform, mainly microporous structure. The specific surface areas of the four modified biochar were 521.07 m(2) g(-1), 581.85 m(2) g(-1), 304.99 m(2) g(-1), and 429.97 m(2) g(-1). The adsorption capacity of biochar for Pb(ii) was greatly improved with the increase of the OH functional group of biochar. The stem-pith biochar had the best adsorption effect, with an adsorption amount of 99.95 mg g(-1) and a removal efficiency of 50.35%. The Pseudo-second-order model and Langmuir adsorption isotherm model could preferably describe the adsorption process, indicating the adsorption of lead was monolayer accompanied by chemical adsorption. It can be concluded that co-pyrolysis of biomass and polyethylene and modification may be favorable to enhance the properties of biochar. In addition to syngas and bio-oil from co-pyrolysis, biochar may be a valuable by-product for commercial use, which can be used to remove heavy metals in water, especially stem-pith biochar.
机译:由于其特殊的孔隙结构,Biochar广泛用作气态或液体污染物的吸附剂。以前的研究表明,未处理的生物质热解粗碳的吸附性能差,这可以通过优化孔结构和表面积等物理化学性质来改善。该研究的重点是皮肤,髓和叶片与聚乙烯和氢氧化钾改性的共热分解,以调整生物炭的质量,与玉米秸秆的原料无需分离。分析了生物炭的物理和化学性质,研究了吸附效应,吸附等温线和PB(II)除去的动力学。结果表明,生物质和聚乙烯的共热分解增加了生物炭的产率,平均增加约20%。聚乙烯为生物炭带来了高芳香性,高热值和稳定的材料结构。氢氧化钾改性其比表面积增加,使BioChar的孔隙结构更均匀,主要是微孔结构。四个改性生物炭的比表面积分别521.07米(2)克(-1),581.85米(2)克(-1),304.99米(2)克(-1),和429.97米(2)克(-1)。随着Biochar的OH官能团的增加,PB(II)的Biochar的吸附容量大大提高。茎髓生物炭具有最佳的吸附效果,吸附量为99.95mg(-1),除去效率为50.35%。伪二阶模型和Langmuir吸附等温模型可以优选地描述吸附过程,表明铅的吸附是单层伴随着化学吸附。可以得出结论,生物质和聚乙烯的共热分解和改性可能有利于增强生物炭的性质。除了来自共热分解的合成气和生物油外,BioChar还可以是用于商业用途的有价值的副产物,可用于除去水中的重金属,特别是茎髓生物炭。

著录项

  • 来源
    《RSC Advances》 |2020年第11期|共15页
  • 作者单位

    Shenyang Aerosp Univ Sch Energy &

    Environm Liaoning Prov Key Lab Clean Energy Shenyang 110036 Peoples R China;

    Tianjin Univ Sch Environm Sci &

    Engn Tianjin Key Lab Biomass Wastes Utilizat 135 Yaguan Rd Haihe Educ Pk Tianjin 300072 Peoples R China;

    Shenyang Aerosp Univ Sch Energy &

    Environm Liaoning Prov Key Lab Clean Energy Shenyang 110036 Peoples R China;

    Tianjin Univ Sch Environm Sci &

    Engn Tianjin Key Lab Biomass Wastes Utilizat 135 Yaguan Rd Haihe Educ Pk Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Environm Sci &

    Engn Tianjin Key Lab Biomass Wastes Utilizat 135 Yaguan Rd Haihe Educ Pk Tianjin 300072 Peoples R China;

    Shenyang Aerosp Univ Sch Energy &

    Environm Liaoning Prov Key Lab Clean Energy Shenyang 110036 Peoples R China;

    Tianjin Univ Sch Environm Sci &

    Engn Tianjin Key Lab Biomass Wastes Utilizat 135 Yaguan Rd Haihe Educ Pk Tianjin 300072 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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