Influencia de las fracciones de materia orgánica sobre el desempeño de un sistema de tratamiento de agua residual de una industria papelera

dc.creatorRodríguez, Jenny
dc.creatorMañunga, Tatiana
dc.creatorCárdenas, Cristian
dc.date2012-12-31
dc.date.accessioned2023-08-28T15:13:21Z
dc.date.available2023-08-28T15:13:21Z
dc.identifierhttps://revistas.udca.edu.co/index.php/ruadc/article/view/846
dc.identifier.urihttps://repositorioslatinoamericanos.uchile.cl/handle/2250/8442831
dc.descriptionSlowly biodegradable organic matter represents the bulk of organic matter content of pulp and paper mill wastewater which can influence the performance of treatment systems. The organic matter fractionation is a useful tool that generates information for optimize treatment processes of wastewater. Organic matter fractionation study was carried out. Biodegradable soluble, biodegradable particulate, non- biodegradable soluble and non-biodegradable particulate fractions were identifies in effluents of primary clarifier, facultative aerated pond and sedimentation pond. Results of this study show that organic matter non-biodegradable/ total organic matter ratios of the influent were 69% while biodegradable fraction was 31%. Primary clari?er removed significantly the non-biodegradable fraction it was key for biological treatment. The biodegradable soluble fraction was mostly removed in facultative aerated pond (44% to 12%). The effluent was polished in the sedimentation pond, mainly particulate organic matter fraction. Only a small percentage of non-biodegradable organic matter was adsorbed by facultative aerated pond biomass, the fraction of this organic matter accounted for 19% in the influent and increased to 45% in the effluent.en-US
dc.descriptionEl tipo de materia orgánica presente en el agua residual influye sobre el grado y la complejidad del tratamiento biológico, por lo que el análisis del fraccionamiento de la materia orgánica puede brindar información complementaria para la optimización de los procesos. En esta investigación, se identificaron las fracciones de materia orgánica: biodegradable particulada, biodegradable soluble, no biodegradable particulada y no biodegradable soluble, en el agua residual de una industria papelera y en los efluentes de las unidades que componen la planta de tratamiento de agua residual (clarificador primario, laguna aireada facultativa y laguna de sedimentación). Los resultados mostraron que la fracción no biodegradable representó el 69% de la DQO total del afluente, mientras que la fracción biodegradable significó el 31%. La clarificación primaria desempeñó un papel fundamental en la tratabilidad biológica del agua residual, al reducir significativamente la fracción no biodegradable. La laguna aireada facultativa disminuyó, representativamente, la fracción biodegradable soluble de 44% a 12%, mientras que la laguna de sedimentación desarrolló un efecto de pulimiento sobre el efluente, alterando, principalmente, la fracción particulada. La disminución de la materia orgánica no biodegradable soluble fue especialmente obtenida como resultado de su adsorción sobre la biomasa en la laguna aireada facultativa; la fracción de este tipo de materia orgánica fue adquiriendo mayor protagonismo en el agua residual, a medida que avanzó el grado de tratamiento, incrementado su valor desde 19%, en el afluente, hasta 45%, en el efluente de la laguna de sedimentación.es-ES
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dc.publisherUniversidad de Ciencias Aplicadas y Ambientales U.D.C.Aes-ES
dc.relationhttps://revistas.udca.edu.co/index.php/ruadc/article/view/846/973
dc.relationhttps://revistas.udca.edu.co/index.php/ruadc/article/view/846/974
dc.relation/*ref*/APHA. 2005. Standard methods for the examination of water and wastewater. 21st ed. Editors APHA, American Water Works Assoc. and Water Environment Federation. (Washington, DC). p. 2-55,5-14.
dc.relation/*ref*/BILGILI, M.S.; DEMIR, A.; AKKAYA, E.; OZKAYA, B. 2008. COD fractions of leachate from aerobic and anaerobic pilot scale landfill reactors. J Hazard Mater. 158:157-163.
dc.relation/*ref*/BUZZINI, A.; PIRES, E. 2007. Evaluation of a upflow anaerobic sludge blanket reactor with partial recirculation of effluent used to treat wastewaters from pulp and paper plants. Bioresour. Technol. 98:1838-1848.
dc.relation/*ref*/DULEKGURGEN, E.; DOGRUEL, S.; KARAHAN, Ö.; ORHON, D. 2006. Size distribution of wastewater COD fractions as an index for biodegradability. Water Res. 40:273-282.
dc.relation/*ref*/FEIDEN, A. 2001. Avaliação da eficiência de lagoas de tratamento de resíduos líquidos. En: Cereda, M. ed. Manejo, uso e tratamento de subprodutos da industrialização da mandioca. Ed. Fundação Cargill. (São Paulo). p.191.
dc.relation/*ref*/FULTHORPE, R.; LISS, S.; ALLEN, D. 1993. Characterization of bacteria isolated from a bleached kraft pulp mill wastewater treatment system. Can. J. Microbiol. 39:13-24.
dc.relation/*ref*/GERMIRLI, F.; ORHON, D.; ARTAN, N. 1991. Assessment of the initial inert soluble COD in industrial wastewaters. Wat. Sci. Tech. 23:4-6.
dc.relation/*ref*/GERNAEY, K.; VANROLLEGHEM, P.; LESSARD, P. 2001. Modeling of a reactive primary clarifier Wat. Sci. Tech. 43:73-82.
dc.relation/*ref*/GRADY, C.; DAIGGER, G.; LIM, H. 1999. Biological wastewater treatment. Ed. Marcel Dekker (New York). p.48, 161.
dc.relation/*ref*/GUELLIL, A.; THOMAS, F.; BLOCK, J.; BERSILLON, J.; GINESTET, P. 2001. Transfer of organic matter between wastewater and activated sludge flocs. Water Res. 35:143-150.
dc.relation/*ref*/GUJER, W.; HENZE, M.; MINO, T.; MATSUO, T.; WENTZEL, M.; MARAIS, G. 1995. The activated sludge model No. 2: Biological phosphorus removal. Wat. Sci. Tech. 31:1-11.
dc.relation/*ref*/HU, Z.; CHANDRAN, K.; SMETS, B.; GRASSO, D. 2002. Evaluation of a rapid physical-chemical method for the determination of extant soluble COD. Water Res. 36:617-624.
dc.relation/*ref*/IBARRA, D.; CAMARERO, S.; ROMERO, J.; MARTÍNEZ, M.J.; MARTÍNEZ, A.T. 2006. Integrating laccase- mediator treatment into an industrial-type sequence for totally chlorine-free bleaching of eucalypt kraft pulp. J. Chem. Technol. Biot. 81:1159-1165.
dc.relation/*ref*/INSEL, G.; GUL, K.; ORHON, D.; VANROLLEGHEM, P.; HENZE, M. 2002. Important limitations in the modeling of activated sludge: biased calibration of the hydrolysis process. Wat. Sci. Tech. 45:23-36.
dc.relation/*ref*/LAGARDE, F.; TUSSEAU-VUILLEMIN, M.; LESSARD, P.; HÉDUIT, A.; DUTROP, F.; MOUCHEL, J. 2005. Variability estimation of urban wastewater biodegradable fractions by respirometry. Water Res. 39:4768-4778.
dc.relation/*ref*/LEVINE, A.; TCHOBANOGLOUS, G.; ASANO, T. 1985. Characterization of the Size Distribution of Contaminants in Wastewater: Treatment and Reuse Implications. Water Pollut Control Fed. 57:805-816.
dc.relation/*ref*/MATHIEU, S.; ETIENNE, P. 2000. Estimation of wastewater biodegradable COD fractions by combining respirometric experiments in various So/ Xo ratios. Water Res. 34:1233-1246.
dc.relation/*ref*/MELCER, H. 2003. Methods for wastewater characterization in activated sludge modeling. Ed. IWA Publishing (London). p.C-2.
dc.relation/*ref*/ØEGAARD, H. 1998. Optimised particle separation in the primary step of wastewater treatment. Wat. Sci. Tech. 37:43-53.
dc.relation/*ref*/ORHON, D.; ARTAN, N.; CIMSIT, Y. 1989. The concept of soluble residual product formation in the modelling of Activates Sludge. Wat. Sci. Tech. 21:339-350.
dc.relation/*ref*/ORHON, D.; ATES, E.; SÖZEN, S.; ÇOKGÖR, E. 1997. Characterization and COD fractionation of domestic wastewaters. Environ Pollut. 95:191-204.
dc.relation/*ref*/ORHON, D.; ÇOKGÖR, E. 1997. COD Fractionation in Wastewater Characterization-The State of the Art. J. Chem. Technol. Biot. 68:283-293.
dc.relation/*ref*/ORHON, D.; KARAHAN, Ö.; SÖZEN, S. 1999a. The effect of residual microbial products on the experimental assessment of the particulate inert COD in wastewaters. Water Res. 33:3191-3203.
dc.relation/*ref*/ORHON, D.; TASLI, R.; SÖZEN, S. 1999b. Experimental basis of activated sludge treatment for industrial wastewaters-the state of the art. Wat. Sci. Tech. 40:1-11.
dc.relation/*ref*/PARK, J.K.; WANG, J.; NOVOTNY, G. 1997. Wastewater characterization for evaluation of biological phosphorus removal. Wisconsin Department of Natural Resources, Res. Report 174. p.6.
dc.relation/*ref*/POKHREL, D.; VIRARAGHAVAN, T. 2004. Treatment of pulp and paper mill wastewater-a review. Sci. Total Environ. 333:37-58.
dc.relation/*ref*/SADHASIVAM, S.; SAVITHA, S.; SWAMINATHAN, K. 2009. Deployment of Trichoderma harzianum WL1 laccase in pulp bleaching and paper industry effluent treatment. J. Clean. Product. 18:799-806.
dc.relation/*ref*/SOLLFRANK, U.; KAPPELER, J.; GUJER, W. 1992. Temperature effects on wastewater characterization and the release of soluble inert organic material. Wat. Sci. Tech. 25:33-41.
dc.relation/*ref*/SUVILAMPI, J.; RINTALA, J. 2003. Thermophilic aerobic wastewater treatment, process performance, biomass characteristics, and effluent quality. Rev. Environ. Sci. Bio/Technol. 2:35-51.
dc.relation/*ref*/TCHOBANOGLOUS, G.; BURTON, F.; STENSEL, H. 2003. Wastewater engineering: treatment and reuse. Fourth Edition Metcalf and Eddy, Inc. Ed, McGraw- Hill. (Boston). p.96.
dc.relation/*ref*/TEBBUTT, T. 1979. Primary sedimentation of wastewater. Water Pollut Control Fed. 51(12):2858-2867.
dc.relation/*ref*/THOMPSON, G.; SWAIN, J.; KAY, M.; FORSTER, C. 2001. The treatment of pulp and paper mill effluent: a review. Biores. Technol. 77:275-286.
dc.relation/*ref*/TSANG, Y.; HUA, F.; CHUA, H.; SIN, S.; WANG, Y. 2007. Optimization of biological treatment of paper mill effluent in a sequencing batch reactor. Biochem. Eng. J. 34:193-199.
dc.relation/*ref*/VERET, S.; GALISTEO, M.; SENDIC, M. 2000. Evaluacion respirometrica de la biodegradabilidad aeróbica de un efluente de curtiembre. En: XXVII Congresso Interamericano de Engenharia Sanitária e Ambiental, ABES - Associação Brasileira de Engenharia Sanitária e Ambiental, Porto Alegre, 3 - 8 Diciembre 2000. I-184.
dc.relation/*ref*/VON SPERLING, M.; CHERNICHARO, C. 2005. Biological wastewater treatment in warm climate regions, Ed. IWA Publishing (London). p.564-572.
dc.relation/*ref*/WENTZEL, M.; MBEWE, A.; LAKAY, M.; EKAMA, G. 1999. Batch test for characterisation of the carbonaceous materials in municipal wastewaters. Water S. A. 25:327-336.
dc.relation/*ref*/XIA, W., LI, J.; ZHENG, X. 2008. Biodegradability Assessment of Industrial Wastewater by Warburg Respirometer. En: Bioinformatics and Biomedical Engineering, 2008. ICBBE 2008. The 2nd International Conference on Shanghai, 16-18 Mayo 2008. 3738-3740.
dc.sourceRevista U.D.C.A Actualidad & Divulgación Científica; Vol. 15 No. 2 (2012): Revista U.D.C.A Actualidad & Divulgación Científica. Julio-Diciembre; 447-455en-US
dc.sourceRevista U.D.C.A Actualidad & Divulgación Científica; Vol. 15 Núm. 2 (2012): Revista U.D.C.A Actualidad & Divulgación Científica. Julio-Diciembre; 447-455es-ES
dc.sourceRevista U.D.C.A Actualidad & Divulgación Científica; v. 15 n. 2 (2012): Revista U.D.C.A Actualidad & Divulgación Científica. Julio-Diciembre; 447-455pt-BR
dc.source2619-2551
dc.source0123-4226
dc.source10.31910/rudca.v15.n2.2012
dc.subjectFraccionamiento de materia orgánicaes-ES
dc.subjectIndustria papeleraes-ES
dc.subjectMateria orgánica solublees-ES
dc.subjectMateria orgánica particuladaes-ES
dc.subjectCOD fractionsen-US
dc.subjectOrganic matteren-US
dc.subjectParticulate CODen-US
dc.subjectSoluble CODen-US
dc.subjectPaper mill wastewateren-US
dc.titleEffect of organic matter fractions on the performance of a pulp and paper mill wastewater treatment systemen-US
dc.titleInfluencia de las fracciones de materia orgánica sobre el desempeño de un sistema de tratamiento de agua residual de una industria papeleraes-ES
dc.typeinfo:eu-repo/semantics/article
dc.typeinfo:eu-repo/semantics/publishedVersion


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