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쌀겨 바이오차와 분말 활성탄을 이용한 메틸렌 블루와 휴믹산 제거 효율 비교
Comparative Evaluation of Methylene Blue and Humic Acids Removal Efficiency Using Rice Husk Derived Biochars and Powdered Activated Carbon 원문보기

한국물환경학회지 = Journal of Korean Society on Water Environment, v.37 no.6, 2021년, pp.483 - 492  

이주원 (강원대학교 환경공학과) ,  정은주 (강원대학교 환경공학과) ,  이정민 (강원대학교 환경공학과) ,  이용구 (강원대학교 환경공학과) ,  전강민 (강원대학교 환경공학과)

Abstract AI-Helper 아이콘AI-Helper

This study evaluated the removal efficiencies of methylene blue (MB) and humic acids (HA) using a rice husk (RH) biochar and powdered activated carbon (PAC). The pseudo-second-order model better presented the adsorption of MB and HA onto a RH biochar than the pseudo-first-order model. Furthermore, b...

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참고문헌 (27)

  1. Alade, A. O., Amuda, O. S., Afolabi, A. O., and Adelowo, F. E. (2012). Adsorption of acenaphthene unto activated carbon produced from agricultural wastes, Journal of Environmental Science and Technology, 5, 192-209. 

  2. Chatterjee, S., Lee, D. S., Lee, M. W., and Woo, S. H. (2009). Congo red adsorption from aqueous solutions by using chitosan hydrogel beads impregnated with nonionic or anionic surfactant, Bioresource Technology, 100, 3862-3868. 

  3. Chaukura, N., Murimba, Edna C., and Gwenzi, W. (2017). Sorptive removal of methylene blue from simulated wastewater using biochars derived from pulp and paper sludge, Environmental Technology and Innovation, 8, 132-140. 

  4. Chen, Y. D., Lin, Y. C., Ho, S. H., Zhou, Y., and Ren, N. Q. (2018). Highly efficient adsorption of dyes by biochar derived from pigments extracted macroalage pyrolyzed at different temperature, Bioresource Technology, 259, 104-110. 

  5. Guzel, F., Saygili, H., Saygili, G. A., and Koyuncu, F. (2014). Decolorisation of aqueous crystal violet solution by a new nanoporous carbon: Equilibrium and kinetic approach, Journal of Industrial and Engineering Chemistry, 203, 375-3386. 

  6. Hamzaoui, R., Bouchenafa, O., Guessasma, S., Leklou, N., and Bouaziz, A. (2016). The sequel of modified fly ashes using high energy ball milling on mechanical performance of substituted past cement, Materials and Design, 90, 29-37. 

  7. He, J., Cui, A., Deng, S., and Chen, J. P. (2018). Treatment of methylene blue containing wastewater by a cost-effective micro-scale biochar/polysulfone mixed matrix hollow fiber membrane: Performance and mechanism studies, Journal of Colloid and Interface Science, 512, 190-197. 

  8. Ho, Y. S. and Macky, G. (1999). Pseudo-second order model for sorption processes, Process Biochemistry, 34, 451-465. 

  9. Jeon, J. H., Kim, Y. H., Hwang, I. S., Lee, J. Y., Kim, J. S., and Han, C. (2013). Adsorption/desorption characteristics of vanadium from ammonium metavanadate using anion exchange resin, Journal of Korean Institute of resources recycling, 22, 55-63. 

  10. Kavitha, D. and Namasivayam, C. (2007). Experimental and kinetic studies on methylene blue adsorption by coir pith carbon, Bioresource Technology, 98, 14-21. 

  11. Keiluweit, M., Nico, P., Johnson, M., and Kleber, M. (2010). Dynamic molecular structure of plant biomass-derived black carbon, Environmental Science & Technology, 44(4), 1247-1253. 

  12. Kizito, S., Wu, S., Kirui, K., Lei, M., Lu, Q., Bah, H., and Dong, R. (2015). Evaluation of slow pyrolyzed wood and rice husks biochar for adsorption of ammonium nitrogen from piggery manure anaerobic digestate slurry, Science of The Total Environment, 505, 102-112. 

  13. Korea Federation of Textile Industries. (2020). Korea Textile Industry, http://www.kofoti.or.kr/textile/indstrPresent.do. (accessed Jan. 2020). 

  14. Lafi, R., Gzara, L., Lajimi, R. H., and Hafiane, A. (2018). Treatment of textile wastewater by a hybrid ultrafiltration/electrodialysis process, Chemical Engineering and Processing - Process Intensification, 132, 105-113. 

  15. Lee, G. B., Kim, H. J., Park, S. G., Ok, O. K., and Ahn, J. H. (2016). Adsorption of methylene blue by soybean stover and rice hull derived biochars compared to that by activated carbon, Journal of Korean Society on Water Environment, 32, 291-296. 

  16. Lian, F., Sun, B., Chen, X., Zhu, L., Liu, Z., and Xing, B. (2015). Effect of humic acid (HA) on sulfonamide sorption by biochars, Environmental Pollution, 204, 306-312. 

  17. Mohan, D., Saswat, A., Ok, Y. S., and Pittman Jr., C. U. (2014). Organic and inorganic contaminants removal from water with biochar, a renewable, low cost and sustainable adsorbent-a critical review, Bioresource Technology, 160, 191-202. 

  18. Nhan, B. D. and Tuan, M. A. (2013). Electrochemical synthesis of polypyrrole for biosensor application, International Journal of Nanotechnology, 10, 154-165. 

  19. Park, H., Kim, J., Lee, Y. G., and Chon, K. (2021). Enhanced adsorptive removal of dyes using mandarin peel biochars via chemical activation with NH 4 Cl and ZnCl 2 , Water, 13(11), 1495. 

  20. Shin, J., Lee, Y. G., Lee, S. H., Kim, S., Ochir, D., Park, Y., Kim, J., and Chon, K. (2020). Single and competitive adsorption of micropollutants using pristine and alkali-modified biochars from spent coffee grounds, Journal of Hazardous Materials, 400, 123102. 

  21. Singh, P., Singh, S. K., Bajpai, J., Bajpai, A. K., and Shrivastava, R. B. (2014). Iron crosslinked alginate as novel nanosorbents for removal of arsenic ions and bacteriological contamination from water, Journal of Materials Research and Technology, 3, 195-202. 

  22. Sun, L., Wan, S., and Luo, W. (2013). Biochars prepared from anaerobic digestion residue, palm bark, and eucalyptus for adsorption of cationic methylene blue dye: Characterization, equilibrium, and kinetic studies, Bioresource Technology, 140, 406-413. 

  23. Tan, I. A. W., Ahmad, A. L., and Hameed, B. H. (2009). Adsorption isotherms, kinetics, thermodynamics and desorption studies of 2,4,6-trichlorophenol on oil palm empty fruit bunch-based activated carbon, Journal of Hazardous Materials, 164, 473-482. 

  24. Uchimiya, M., Chang, S., and Klasson, K. T. (2011). Screening biochars for heavy metal retention in soil: Role of oxygen functional groups, Journal of Hazardous Materials, 190, 432-441. 

  25. Wang, F., Sun, H., Ren, X., Liu, Y., Zhu, H., Zhang, P., and Ren, C. (2017). Effects of humic acid and heavy metals on the sorption of polar and apolar organic pollutants onto biochars, Environmental Pollution, 231, 229-236. 

  26. Wang, S. and Zhu, Z. H. (2007). Humic acid adsorption on fly ash and its derived unburned carbon, Journal of Colloid and Interface Science, 315, 41-46. 

  27. Yi, S., Gao, B., Sun, Y., Wu, J., Shi, X., Wu, B., and Hu, X. (2016). Removal of levofloxacin from aqueous solution using rice-husk and wood-chip biochars, Chemosphere, 150, 694-701. 

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