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2018 | 17 |

Tytuł artykułu

Fixed-bed adsorptive removal of metanil yellow from simulated wastewater in a fixed-bed column by nitric acid-treated-H3PO4-activated carbon (NATPAAC) from oil palm fruit mesocarpfibre

Treść / Zawartość

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
We carried out fixed-bed column adsorption of metanil yellow from simulated wastewater on NATPAAC derived from oil palm fruit mesocarpfibre so as to determine the adsorption capacity, qe, of the carbon under the effects of inlet concentration, Co, carbon bed height, H and dye solution flow rate, Q. Our results indicate that the optimum qe was 15.982 mg/g by Co 25 mg/L, H 4.1cm and Q 8 mL/min. In the study, qe was observed to decrease with increase in Co and Q. The optimum bed height was 4.1cm. Our experimental data were modelled by applying Thomas and Yoon-Nelson kinetic models. Correlation coefficient, R2 values (generally above 0.85) show that the two kinetic approaches provide an effective model of the experimental data. We conclude that oil palm fruit mesocarpfibre has potential as a precursor for production of carbon for acid-dye removal from wastewater.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

17

Opis fizyczny

p.157-172,fig.,ref.

Twórcy

autor
  • Department of Chemistry, Imo State University, P.M.B. 2000, Owerri, Nigeria
autor
  • Department of Chemistry, Imo State University, P.M.B. 2000, Owerri, Nigeria
autor
  • Department of Pure and Applied Chemistry, University of Calabar, Calabar, Nigeria
autor
  • Department of Chemistry, Imo State University, P.M.B. 2000, Owerri, Nigeria

Bibliografia

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  • [2] Aksu, Z., (2005). Application of biosorption for the removal of organic pollutants: A review. Process Biochemistry, 40, 997-1026
  • [3] Crini, G. 2006. Non-conventional low-cost adsorbent for dye removal. Bioresource Technology, 97, 1061-1085
  • [4] Jain, R., Sharma, N. and Radhpyari, K., (2009). Removal of hazardous azo dye metanil yellow from industrial waste water using electrochemical technique. European Water, 27/28, 43-52
  • [5] Sivashankar, R., Sivasubramanian, V., Sathya, A.B.and Pallipad, S., (2013). Biosorption of hazardous azo dye metanil yellow using immobilized aquatic weed. In Proceedings of International Conference on Future Trends in Structural, Civil, Environmental and Mechanical Engineering. doi: 10.3850/978-981-07-7021-1_72. pp. 153-157, Institution of Research for Engineers and Doctors, India.
  • [6] Pramanpol, N. and Nitayapat, N., (2006). Adsorption of reactive dye by eggshell and its membrane. Kasetsart Journal of Natural Science, 40 (Suppl.), 192-197
  • [7] Isiuku, B. O., Horsfall Jnr. M. and Spiff, A. I. (2014). Colour removal from a simulated methyl red wastewater by adsorption on carbon in a fixed bed. Research Journal of Applied Science, 9(4), 201-207
  • [8] Ahmad A. A. and Hameed B. H., (2010). Fixed-bed adsorptjon of reactive azo dye onto granular activated carbon prepared from waste. Journal of Hazardous Materials, 179, 298-303
  • [9] Patel, H. and Vashi, R.T., (2012). Fixed-bed column adsorption of Acid Yellow 17 dye onto tamarind seed powder. Canadian Journal of Chemical Engineering, 90, 180-185
  • [10] Unuabonah, E. I., Olu-Owolabi, B. I., Fasuyi, E. I. and Adebowale, K. O., (2010). Modelling of fixed-bed column studies for the adsorption of cadmium onto novel polymer-clay composite adsorbent. Journal of Hazardous Materials, 179, 415-421
  • [11] Markovska L., Meshko, V. and Noveski, V., (2001). Adsorption of basic dyes in a fixed-bed column. Korean Journal of Chemical Engineering, 18, 190-195
  • [12] Cheng, P. J. and Wang, X., (2000). Aspect of kaolinite characterization and retention of Pb and Cd. Applied Clay Science, 22, 39-45
  • [13] Otero, M., Rozada, F., Garcoia, A. and Moran, A., (2003). Kinetic and equilibrium modelling of methylene blue removal from solution by adsorbent material produced from sewage sludges. Biochemical Engineering Journal, 15, 59-68
  • [14] Nwabanne J.T. and Igbokwe, P. K., (2012). Adsorption performance of packed-bed column for the removal of lead (II) using oil palm fibre. International Journal of Applied Technology, 2(5), 106-115
  • [15] O. B . Isiuku, Horsfall Jnr. M. and Spiff, A. I., (2013). Adsorption of metanil yellow on chemically-activated carbon in a packed-bed column: Effect of activation reagent, J. Eng. Appl. Sci. 8(9-12), 282-289
  • [16] Ahmad, A. A., Hameed, B. H. and Aziz, N., (2006). Adsorption of direct dye on palm ash: kinetic and equilibrium modelling. Journal of Hazardous Materials. 094, 1-10
  • [17] Taty-Custodes, V.C., Fauduet, H., Porte, C. and Ho, Y.S., (2005). Removal of lead (II) ions from synthetic and real effluents using immobilized Pinus sylvetris sawdust: adsorption on a fixed-bed column. Journal of Hazardous Materials, B123, 135-144
  • [18] Aksu, Z. and Gönen, F., (2004). Biosorption of phenol by immobilized activated sludge in a continuous packed bed: prediction of breakthrough curves. Process Biochemistry, 39, 599-613
  • [19] Fu, Y. and Viraraghavan, T., (2003). Column studies for biosorption of dyes from aqueous solutions on immobilized Aspergillus niger fungal biomass. Water SA. 29, 465-472
  • [20] Kundu, S. and Gupta, A. K., (2007). As(III) removal from aqueous medium in fixed bed using iron oxide-coated cement (IOCC): experimental and modelling studies. Chemical Engineering Journal, 129, 123-131
  • [21] Njoku, V.O., Obi, C., Oguzie, E.E., Ayuk, A. A. and Bello, O., S. (2012). Removal of Cr (II) and Zn (II) from aqueous solutions by a Nigerian natural clay. International Journal of Chemistry, 22(1), 57-65
  • [22] Porkodi K. and K. Vasanth Kumar. Equilibrium, kinetic and mechanism modelling and simulation of basic and acid dyes sorption onto jute fibre carbon: Eosin yellow, malachite green and crystal violet single component systems, Journal of Hazardous Materials. (2006). doi:10.1016/j.j-hazmat. 2006.09.02
  • [23] Salman J.M., Njoku, V.O. and Hameed B.H., (2011). Batch and fixed-bed adsorption of 2, 4-dichlorophenoxyacetic acid onto oil palm frond activated carbon. Chemical Engineering Journal, 174, 33-40

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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