Evaluación y formulación de microorganismos eficaces para el tratamiento de aguas residuales generadas por la industria porcícola en Risaralda
CD-T 363.728 4 G588; 34 p
- Autores:
-
González Algecira, Jhonatan
Arboleda Ocampo, Ana Milena
- Tipo de recurso:
- Trabajo de grado de pregrado
- Fecha de publicación:
- 2017
- Institución:
- Universidad Libre
- Repositorio:
- RIU - Repositorio Institucional UniLibre
- Idioma:
- spa
- OAI Identifier:
- oai:repository.unilibre.edu.co:10901/16153
- Acceso en línea:
- https://hdl.handle.net/10901/16153
- Palabra clave:
- Contaminación
Calidad del agua
Aguas residuales
Aguas residuales
Manejo ambiental
Lodos de vaciado
Residuos líquidos industriales
- Rights
- openAccess
- License
- Atribución-NoComercial-SinDerivadas 3.0 Estados Unidos de América
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dc.title.es_CO.fl_str_mv |
Evaluación y formulación de microorganismos eficaces para el tratamiento de aguas residuales generadas por la industria porcícola en Risaralda |
title |
Evaluación y formulación de microorganismos eficaces para el tratamiento de aguas residuales generadas por la industria porcícola en Risaralda |
spellingShingle |
Evaluación y formulación de microorganismos eficaces para el tratamiento de aguas residuales generadas por la industria porcícola en Risaralda Contaminación Calidad del agua Aguas residuales Aguas residuales Manejo ambiental Lodos de vaciado Residuos líquidos industriales |
title_short |
Evaluación y formulación de microorganismos eficaces para el tratamiento de aguas residuales generadas por la industria porcícola en Risaralda |
title_full |
Evaluación y formulación de microorganismos eficaces para el tratamiento de aguas residuales generadas por la industria porcícola en Risaralda |
title_fullStr |
Evaluación y formulación de microorganismos eficaces para el tratamiento de aguas residuales generadas por la industria porcícola en Risaralda |
title_full_unstemmed |
Evaluación y formulación de microorganismos eficaces para el tratamiento de aguas residuales generadas por la industria porcícola en Risaralda |
title_sort |
Evaluación y formulación de microorganismos eficaces para el tratamiento de aguas residuales generadas por la industria porcícola en Risaralda |
dc.creator.fl_str_mv |
González Algecira, Jhonatan Arboleda Ocampo, Ana Milena |
dc.contributor.author.none.fl_str_mv |
González Algecira, Jhonatan Arboleda Ocampo, Ana Milena |
dc.subject.spa.fl_str_mv |
Contaminación Calidad del agua Aguas residuales |
topic |
Contaminación Calidad del agua Aguas residuales Aguas residuales Manejo ambiental Lodos de vaciado Residuos líquidos industriales |
dc.subject.proposal.es_CO.fl_str_mv |
Aguas residuales Manejo ambiental Lodos de vaciado Residuos líquidos industriales |
description |
CD-T 363.728 4 G588; 34 p |
publishDate |
2017 |
dc.date.issued.none.fl_str_mv |
2017-08-10 |
dc.date.accessioned.none.fl_str_mv |
2018-01-15T21:23:33Z 2019-10-03T20:49:57Z |
dc.date.available.none.fl_str_mv |
2018-01-15T21:23:33Z 2019-10-03T20:49:57Z |
dc.type.local.spa.fl_str_mv |
Tesis de Pregrado |
dc.type.coar.es_CO.fl_str_mv |
http://purl.org/coar/resource_type/c_7a1f |
dc.type.driver.spa.fl_str_mv |
info:eu-repo/semantics/bachelorThesis |
format |
http://purl.org/coar/resource_type/c_7a1f |
dc.identifier.citation.es_CO.fl_str_mv |
Tesis Microbiología |
dc.identifier.other.none.fl_str_mv |
CD5534 |
dc.identifier.uri.none.fl_str_mv |
https://hdl.handle.net/10901/16153 |
identifier_str_mv |
Tesis Microbiología CD5534 |
url |
https://hdl.handle.net/10901/16153 |
dc.language.iso.es_CO.fl_str_mv |
spa |
language |
spa |
dc.relation.ispartofseries.none.fl_str_mv |
CD-T 363.728 4 G588;34 p |
dc.relation.references.Eng.fl_str_mv |
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(1997). Combined anaerobic-aerobic system to treat domestic sewage in coastal areas. A Water Res, 31(6), 3057-3063. Cavalcanti, P. (2003). Integrated application of the UASB reactor and ponds for domestic sewage treatment in tropical regions. (PhD), Wageningen University, Wageningen, The Netherlands. Crawford, JH. (1983). Review of composting. Crites, R., & Tchobanoglus, G. (1998). Small and decentraliced wastewater management systems. USA: McGraw-Hill. Chagas, PRR., Tokeshi, H., & Alves, MC. (1999). ffect of calcium on yield of papaya fruits on conventional and organic (Bokashi EM) systems. Paper presented at the Proceedings of the 6th International Conference on Kyusei Nature Farming, South Africa. Cheng, Z., Chen, M., Xie, L., Peng, L., Yang, M., & Li, M. (2015). Bioaugmentation of a sequencing batch biofilm reactor with Comamonas testosteroni and Bacillus cereus and their impact on reactor bacterial communities. 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I., Ali, N., Jamal, A., Hameed, A., & Ahmed, S. (2014). Bacterial succession and degradative changes by biofilm on plastic medium for wastewater treatment. J Basic Microbiol, 54(7), 739-749. doi: 10.1002/jobm.201300162 Lettinga, G., Man, A., Grin, P., & Hulshof, P. (1987). Anaerobic wastewater treatment as an appropriate technology for developping countries. Tribune Cebedeau, 40(11), 21-32 Li, C., Ren, H., Yin, E., Tang, S., Li, Y., & Cao, J. (2015). Pilot-scale study on nitrogen and aromatic compounds removal in printing and dyeing wastewater by reinforced hydrolysis-denitrification coupling process and its microbial community analysis. Environ Sci Pollut Res Int, 22(12), 9483-9493. doi: 10.1007/s11356-015-4124-4 Li, WF. (1994). Effect of EM on crop and animal husbandry in China. Paper presented at the Proceedings of 3rd Conference on EM Technology. Lotti, T., Kleerebezem, R., Abelleira-Pereira, J. M., Abbas, B., & van Loosdrecht, M. C. (2015). Faster through training: The anammox case. Water Res, 81, 261- 268. doi: 10.1016/j.watres.2015.06.001 Massoudinejad, M. R., Manshouri, M., Khatibi, M., Adibzadeh, A., & Amini, H. (2008). Hydrogen sulfide removal by Thiobacillus thioparus bacteria on seashell bed biofilters. Pak J Biol Sci, 11(6), 920-924. Mbubligue, SE. (2004). Comparative effectiveness of engineered wetland system in the treatment of anaerobically pre-treated domestic wastewater. Ecol. Eng., 24(15), 269-284. Melse, R. W., & Timmerman, M. (2009). Sustainable intensive livestock production demands manure and exhaust air treatment technologies. Bioresour Technol, 100(22), 5506-5511. doi: 10.1016/j.biortech.2009.03.003 Metcalf., & Eddy. (2003). Wastewater Engineering. Treatment and Reuse. (Fourth edición ed.). New York (USA). McGraw-Hill. Michailides, M. K., Tekerlekopoulou, A. G., Akratos, C. S., Coles, S., Pavlou, S., & Vayenas, D. V. (2015). Molasses as an efficient low-cost carbon source for biological Cr(VI) removal. J Hazard Mater, 281, 95-105. doi: 10.1016/j.jhazmat.2014.08.004 Mohan, S. Venkata, Rao, N. Chandrasekhara, Prasad, K. Krishna, & Sarma, P. N. (2005). Bioaugmentation of an anaerobic sequencing batch biofilm reactor (AnSBBR) with immobilized sulphate reducing bacteria (SRB) for the treatment of sulphate bearing chemical wastewater. Process Biochemistry, 40(8), 2849-2857. doi: 10.1016/j.procbio.2004.12.027 Morato, J., Codony, F., Sanchez, O., Perez, L. M., Garcia, J., & Mas, J. (2014). Key design factors affecting microbial community composition and pathogenic organism removal in horizontal subsurface flow constructed wetlands. Sci Total Environ, 481, 81-89. doi: 10.1016/j.scitotenv.2014.01.068 Noyola, A. (1996). Anaerobic technology as tool for the sustainable enviroment: the context of Mexico. In I. d. I. Unam. (Ed.), Biodegradación de compuestos orgánicos industriales. Mexico. Olaniran, A. O., Pillay, D., & Pillay, B. (2006). Biostimulation and bioaugmentation enhances aerobic biodegradation of dichloroethenes. Chemosphere, 63(4), 600-608. doi: 10.1016/j.chemosphere.2005.08.027 Omri, I., Aouidi, F., Bouallagui, H., Godon, J. J., & Hamdi, M. (2013). Performance study of biofilter developed to treat H2S from wastewater odour. Saudi J Biol Sci, 20(2), 169-176. doi: 10.1016/j.sjbs.2013.01.005 Orantes, J. C., & Gonzalez-Martinez, S. (2003). A new low-cost biofilm carrier for the treatment of municipal wastewater in a moving bed reactor. Water Sci Technol, 48(11-12), 243-250 Pierra, M., Carmona-Martinez, A. A., Trably, E., Godon, J. J., & Bernet, N. (2015). Specific and efficient electrochemical selection of Geoalkalibacter subterraneus and Desulfuromonas acetoxidans in high current-producing biofilms. Bioelectrochemistry. doi: 10.1016/j.bioelechem.2015.02.003 Qasim, G. (1997). Recycling of Sewage Water and Industrial Effluent Using EM Technology. (MSc), University of Agriculture, Faisalabad, Pakistan. Ritter, WF. (1989). Odour control of livestock wastes: State-of-the-art in North America. J. Agric. Eng. Res, 42, 51-62. Sangakkara, R. (2002). The Technology of effective microorganisms – Case Studies of application: Royal Agricultural College, Cirencester, UK Research Activities Shangguan, H., Liu, J., Zhu, Y., Tong, Z., & Wu, Y. (2015). Start-up of a spiral periphyton bioreactor (SPR) for removal of COD and the characteristics of the associated microbial community. Bioresour Technol, 193, 456-462. doi: 10.1016/j.biortech.2015.06.151 Sharifuddin, HAH. (1993). Nature farming research in Malaysia: effect of organic amendment and EM on crop production. Paper presented at the Proceedings 3rd Intl. Conference on Kyusei Nature Farming, Santa Barbara, California U.S.A. Shintani, M. (2000). Organic fertilizer – Managing banana residues with Effective Microorganisms. 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Asociacion colombiana de porcicultores (2015). [Estadisticas de produccion y consumo decerdo a nivel nacional]. Bernal, DP., & Cardona, DA. (2003). Selección de tecnología para el tratamiento de aguas residuales domésticas por métodos naturales: una metodología con énfasis en aspectos tecnológicos. (Pregrado Ingeniería sanitaria y ambiental), Universidad del Valle, Cali. Colombia. Castillo, G., Altuna, B., Michelena, G., Sanchez-Bravo, J., & Acosta, M. (2005). Cuantificacion del contenido de acido indol acetico (AIA) en un caldo de fermentacion microbiana. Anales de biologia, 27, 137-142. Castro, A. (2003). Selección de alternativas sostenibles para el tratamiento de aguas residuales municipales en Colombia: un método con énfasis en aspectos 1 2 3 4 5 6 7 8 9 10 11 12 RECOLECCION DE MUESTRAS DE AGUAS RESIDUALES DE GRANJA PORCICOLA X X ANALISIS FISICOQUIMICO Y MICROBIOLOGICO DE LAS MUESTRAS DE AGUAS RESIDUALES X X X MULTIPLICACION Y ALMACENAMIENTO DE LOS MICROORGANISMOS EFICACES A UTILIZAR X X X X PREPARACION DE LAS FORMULACIONES DE MICROORGANISMOS EFICACES X X X X TRATAMIENTO DE LAS AGUAS RESIDUALES CON LA COMBINACION DE MICROORGANISMOSEFICACES DEFINIDOS X X X X X ANALISIS ESTADISTICO DE LOS RESULTADOS X X X ENTREGA DEL INFORME FINAL X MESES ACTIVIDAD tecnológicos. (MSc en Ingeniería Sanitaria y Ambiental), Universidad del Valle, Cali. Colombia. Daly, MJ., & Stewart, DPC. (1999). Influence of Effective Microorganisms (EM) on vegetable production and carbon mineralization, A preliminary investigation. J. Sustain. Agric, 14, 15-25. INSTITUTO COLOMBIANO AGROPECUARIO. (2007). RESOLUCIÓN 2640. Ministerio de Agricultura y Desarrollo Rural, Ministerio de Ambiente, Vivienda y Desarrollo Territorial, Ministerio de Comercio, Industria y Turismo, Ministerio de Hacienda y Crédito Público, Ministerio de Protección Social, DNP: Dirección de Desarrollo Rural Sostenible. (2007). POLÍTICA NACIONAL DE SANIDAD E INOCUIDAD PARA LA CADENA PORCICOLA. Bogota, Colombia. Ministerio de ambiente y desarrollo sostenible. (2015). Resolucion 0631. Bogota, Colombia. MINISTERIO DE LA PROTECCION SOCIAL. (2007). DECRETO 1500. Noyola, A. (2003). Seminario Internacional sobre Métodos Naturales para el Tratamiento de Aguas Residuales Agua. Tendencias en el tratamiento de aguas residuales domésticas en Latinoamérica. caeratgene, Colombia. PRESIDENCIA DE LA REPÚBLICA DE COLOMBIA. (2010). Decreto 3930. Presidencia de la Republicade Colombia. (1998). Decreto 475. Sanchez, J. (2003). Evaluacion y monitoreo microbiologico y fisicoquimico de una planta de tratamiento de agua residual por rizofiltracion, en una empresa productora dediscos compactos (Microbiologia Industrial), Pontificia Universidad Javeriana, Bogota, Colombia. Unda, OF. (1999). Ingenieria sanitaria aplicada al saneamiento y salud pública. Mexico: Editorial Limusa S.A. . |
dc.relation.references.s.fl_str_mv |
MINISTERIO DE AMBIENTE, VIVIENDA Y DESARROLLO TERRITORIAL, ASOCIACION COLOMBIANA DE PORCICULTORES, FONDO NACIONAL DE LA PORCICULTURA, SOCIEDAD DE AGRICULTORES DE COLOMBIA. (2002). Guía Ambiental para el subsector Porcícola. Dirección General Ambiental Sectorial, 29-41 |
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González Algecira, JhonatanArboleda Ocampo, Ana MilenaPereira2018-01-15T21:23:33Z2019-10-03T20:49:57Z2018-01-15T21:23:33Z2019-10-03T20:49:57Z2017-08-10Tesis MicrobiologíaCD5534https://hdl.handle.net/10901/16153CD-T 363.728 4 G588; 34 pObjetivos específicos: Caracterizar físico-química y microbiológicamente las aguas residuales de un predio porcícola certificado por el ICA -- Formular diferentes tipos mezclas de microrganismos eficaces (ME) durante el tratamiento de las aguas residuales de esta industria en un predio porcícola certificado por el ica -- Evaluar la eficiencia de las mezclas de micro-organismos estudiadas sobre las características físico-químicas y microbiológicas de las aguas residuales del predio certificado y en estudio -- Identificar las mezclas de micro-organismos más eficientes para recuperar las características físico-químicas y microbiológicas de las aguas residuales del predio certificado en estudio.Universidad Libre Seccional Pereiraapplication/pdfspaUniversidad Libre Seccional PereiraCD-T 363.728 4 G588;34 pAhmed, DA., Hussain, T., Rizvi, F., Gilani, G., & Javid, T (2006). 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