• Repositorio Institucional Universidad de Pamplona
  • Trabajos de pregrado y especialización
  • Facultad de Ingenierías y Arquitectura
  • Ingeniería Ambiental
  • Por favor, use este identificador para citar o enlazar este ítem: http://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/8448
    Registro completo de metadatos
    Campo DC Valor Lengua/Idioma
    dc.contributor.authorPeña Peñaloza, Jéssica Lorena.-
    dc.date.accessioned2024-06-07T02:08:49Z-
    dc.date.available2019-11-13-
    dc.date.available2024-06-07T02:08:49Z-
    dc.date.issued2020-
    dc.identifier.citationPeña Peñaloza, J. L. (2019). Remoción de microplásticos en plantas de tratamiento de aguas residuales mediante procesos avanzados de tratamiento [Trabajo de Grado Pregrado, Universidad de Pamplona]. Repositorio Hulago Universidad de Pamplona. http://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/8448es_CO
    dc.identifier.urihttp://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/8448-
    dc.descriptionLa presente monografía es de suma importancia, ya que ésta permite investigar a fondo bibliográficamente y teóricamente lo pertinente a los microplásticos que se originan en las Plantas de Tratamiento de Aguas Residuales (PTAR), teniendo en cuenta que estos son hoy por hoy un contaminante antropogénico emergente, que se ha detectado en diferentes ambientes acuáticos, como lo son los océanos, mares, lagos, ríos y estuarios, así como en la escorrentía urbana y el efluente de Aguas Residuales. Es por esto que entender el destino y las rutas de transporte de los microplásticos en los procesos de tratamiento de aguas residuales es de suma importancia, ya que los nuevos hallazgos podrían ayudarnos a refinar y optimizar los procesos existentes en las Plantas de Tratamiento para disponer o eliminar este nuevo tipo de contaminante como lo son los microplásticos, esto teniendo en cuenta que las plantas de tratamiento de aguas residuales son fuentes importantes de microplásticos. Para llevar a cabo el desarrollo de la presente monografía de compilación se hizo mediante la consulta de una serie de documentos como artículos científicos, libros, revistas y diversos documentos consultados en la web que se relacionan con el tema de investigación, todo esto con el único fin de respaldar la base teórica de la monografía, la cual tiene como objetivo elaborar una reseña histórica de los microplásticos presentes en las PTAR.es_CO
    dc.description.abstractLa autora no proporciona la información sobre este ítem.es_CO
    dc.format.extent127es_CO
    dc.format.mimetypeapplication/pdfes_CO
    dc.language.isoeses_CO
    dc.publisherUniversidad de Pamplona - Facultad de Ingenierías y Arquitectura.es_CO
    dc.subjectLa autora no proporciona la información sobre este ítem.es_CO
    dc.titleRemoción de microplásticos en plantas de tratamiento de aguas residuales mediante procesos avanzados de tratamiento.es_CO
    dc.typehttp://purl.org/coar/resource_type/c_7a1fes_CO
    dc.date.accepted2019-08-13-
    dc.relation.referencesAdrianus, V. H., & Jeroen, V. d. (2012). Handbook of Biological Wastewater Treatment. Londres: IWA publishing.es_CO
    dc.relation.referencesAlmroth, B., Astrom, L., Roslund, S., Petersson, H., Johansson, M., & Persson, N. (2017). Quantifying shedding of synthetic fibers from textiles; a source of microplastics released into the environment. Environmental Science and Pollution Research., 1191-1199.es_CO
    dc.relation.referencesAndrady A., & Neal M. (2009). Applications and societal benefits of plastics. Philosophical Transactions of the Royal Society of London B., 1977 - 1984.es_CO
    dc.relation.referencesAndrady, A. L. (2011). Microplastics in the marine environment. Marine Pollution Bulletin, 1596-1605.es_CO
    dc.relation.referencesAraujo, C. F., Nolasco, M. M., Ribeiro, A. M., Ribeiro-Claro, P, & J. (2018). Identification of microplastics using Raman spectroscopy: latest developments and future prospects. Water research, 426-440.es_CO
    dc.relation.referencesBagchia, S., Probasco, S., MardanDoost, B., Sturma, S., & B. (2016). Fate of Microplastics in Water Resource Recovery Facilities (WRRFs) and National Environmental Loading Estimates. Proceedings of the Water Environment Federation, 353-361.es_CO
    dc.relation.referencesBarnes, D. K. (2009). Accumulation and fragmentation of plastic debris in global environments. Philosophical Transactions of the Royal Society Series B, 1985– 1998.es_CO
    dc.relation.referencesBayo, J., Olmos, S., López, Castellanos, J., Alcolea, & A. (2016). Microplastics and microfibers in the sludge of a municipal wastewater treatment plant. International Journal of Sustainable Development and Planning, 812-821.es_CO
    dc.relation.referencesBeljanski, A. (2016). Efficiency and effectiveness of a low-cost, self-cleaning microplastic filtering system for wastewater treatment plants.es_CO
    dc.relation.referencesBesseling, E., Quik, J. T., Sun, M., Koelmans, A., & A. (2017). Fate of nano-and microplastic in freshwater systems: A modeling study. Environmental Pollution, 540-548.es_CO
    dc.relation.referencesBesseling, E., Wang, B., Lürling, M., Koelmans, A, & A. (2014). Nanoplastic affects growth of S. obliquus and reproduction of D. magna. Environmental science & technology, 12336-12343.es_CO
    dc.relation.referencesPlastics Europe. (2016). The facts 2016. An analysis of European plastics production, demand and waste. Madrid.es_CO
    dc.relation.referencesPlastics Europe. (2017). Un análisis de los datos sobre producción, demanda y residuos de plásticos en Europa. Noruega y Suiza.es_CO
    dc.relation.referencesPlastics Europe. (2018). Análisis de los datos sobre la producción, la demanda y los residuos de plásticos en Europa. Bruselas.es_CO
    dc.relation.referencesPlastics Europe. (2017). Un análisis de los datos sobre producción, demanda y residuos de plásticos en Europa. Madrid.es_CO
    dc.relation.referencesPlastics packaging and coastal pollution. (s.f.). International Journal of Environmental Studies, 35-36.es_CO
    dc.relation.referencesPNUMA, P. d. (2019). Nuevo informe de ONU Medio Ambiente. India.es_CO
    dc.relation.referencesReddy, M. S. (2006). Description of the small plastics fragments in marine sediments along the Alang-Sosiya ship-breaking yard, India . Estuarine, Coastal and Shelf Science , 656-660.es_CO
    dc.relation.referencesREUTERS. (2018). New Orleans pulls 46 tons of Mardi Gras beads from storm drainses_CO
    dc.relation.referencesRochman, C. M., Kross, S. M., Armstrong, J. B., Bogan, M. T., Darling, E. S., Green, S. J., & Veríssimo, D. (2015). Scientific evidence supports a ban on microbeads.es_CO
    dc.relation.referencesRojo Nieto E., M. T. (2017). Basuras marinas, plásticos y microplásticos: orígenes, impactos y consecuencias de una amenaza global. Ecologistas en Acción.es_CO
    dc.relation.referencesBilbao, A. (2015). Desengancharse del Plástico. Ecologistas en Acción.es_CO
    dc.relation.referencesRosenberger, S., Kruger, U., Witzig, R., Manz, W., Szewzyk, U., & M., K. (2002). Performance of a bioreactor with submerged membranes for aerobic treatment of municipal waste water. Water Research , 413-420.es_CO
    dc.relation.referencesRossi, L. (2014). Enhancing phosphorus removal by disc filtration–A case study from Viikinmäki wastewater treatment plant. Aalto University School of Chemical Technology.es_CO
    dc.relation.referencesRummel, C. D., Jahnke, A., Gorokhova, E., Kühnel, D., Schmitt-Jansen, & M. (2017). Impacts of biofilm formation on the fate and potential effects of microplastic in the aquatic environment. Environmental Science & Technology Letters, 258-267.es_CO
    dc.relation.referencesRyan P.G., M. C. ( 2009). Monitoring the abundance of plastic debris in the marine environment. Biological Sciences, 1999-2012.es_CO
    dc.relation.referencesScherer, C., Weber, A., Lambert, S., Wagner, M., & S. (2018). Interactions of microplastics with freshwater biota. In Freshwater Microplastics Springer, Cham., 153-180.es_CO
    dc.relation.referencesSchymanski, D., Goldbeck, C., Humpf, H., U., Fürst, & P. (2018). Analysis of microplastics in water by micro-Raman spectroscopy: release of plastic particles from different packaging into mineral water. Water research, 154-162.es_CO
    dc.relation.referencesScott, G. (1972). Plastics packaging and coastal pollution. International Journal of Environmental Studies, 35-36.es_CO
    dc.relation.referencesSekiguchi, T., A. Saika, K., Nomura, T., Watanabe, T., Watanabe, Y., Fujimoto, M., . . . Kanehiro, H. (2011). Biodegradation of aliphatic polyesters soaked in deep seawaters and isolation of poly( -caprolactone)-degrading bacteria. Polymer Degradation and Stability, 1397-1403.es_CO
    dc.relation.referencesShah, A., Hasan, F., Hameed, A., Ahmed, S., & A. (2008). Biological degradation of plastics: a comprehensive review. Biotechnol. Adv., 246-265.es_CO
    dc.relation.referencesSherrington, C., Darrah, C., Hann, S., Cole, G., Corbin, M., & Beaudrie, J. (2016). Study to support the development of measures to combat a range of marine litter sources. Report for European Commission DG Environment.es_CO
    dc.relation.referencesBrowne, M. (2015). Marine anthropogenic litter.es_CO
    dc.relation.referencesSimon, M., Alst, N., V., Vollertsen, J., & V. (2018). Quantification of Microplastic Mass and Removal Rates at Wastewater Treatment Plants Applying focal Plane Array (FPA)-based Fourier Transform Infrared (FT-IR) Imaging. Water Research.es_CO
    dc.relation.referencesSundt, P., Schulze, P., & Syversen, F. (2014). Sources of microplastic pollution to the environment. 108pp. Norwegian Environment Agency, 108.es_CO
    dc.relation.referencesSutton, R., Mason, S. A., Stanek, S. K., Willis-Norton, E., Wren, I. F., & Box, C. (2016). Microplastic contamination in the San Francisco Bay, California, USA. Marine pollution bulletin, 230-235.es_CO
    dc.relation.referencesTagg, A. S., Harrison, J. P., Ju-Nam, Y., Sapp, M., Bradley, E. L., Sinclair, C. J., & Ojeda, J. J. (2017). Fenton's reagent for the rapid and efficient isolation of microplastics from wastewater. Chemical Communications, 372-375.es_CO
    dc.relation.referencesTagg, A. S., Sapp, M., Harrison, P., J., Ojeda, & J, J. (2015). Identification and quantification of microplastics in wastewater using focal plane array-based reflectance micro-FT-IR imaging. Analytical chemistry, 6032-6040.es_CO
    dc.relation.referencesTagg, Sapp, M., Harrison, P, J., Ojeda, & J, J. (2015). Identification and quantification of microplastics in wastewater using focal plane array-based reflectance micro-FTIR imaging. Analytical chemistry, 6032 - 6040.es_CO
    dc.relation.referencesTalvitie, J., Heinonen, M., P., P. J., E., V., Mikola, A., Setälä, O., & Vahala, R. (2015). Do wastewater treatment plants act as a potential point source of microplastics? Preliminary study in the coastal Gulf of Finland, Baltic Sea. . Water Science and Technology, 1495-1504.es_CO
    dc.relation.referencesTalvitie, J., Mari, H., Jari, Pekka, Pääkkönen, & Emil, V. (2015). Do wastewater treatment plants act as a potential point source of microplastics? Preliminary study in the coastal Gulf of Finland, Baltic Sea. Water Science & Technology, 1945-1504.es_CO
    dc.relation.referencesTalvitie, J., Mikola, A., Koistinen, Setälä, O., & A. (2017). Solutions to microplastic pollution–Removal of microplastics from wastewater effluent with advanced wastewater treatment technologies. Water Research, 401-407.es_CO
    dc.relation.referencesTalvitie, J., Mikola, A., Setälä, O., Heinonen, M., Koistinen, & A. (2017). How well is microlitter purified from wastewater? A detailed study on the stepwise removal of microlitter in a tertiary level wastewater treatment plant. Water Research, 164- 172.es_CO
    dc.relation.referencesBrowne, M. A., Dissanayake, A., Galloway, T. S., Lowe, D. M., Thompson, R., & C. (2008). Ingested microscopic plastic translocates to the circulatory system of the mussel, Mytilus edulis. Environmental science & technology, 5026-5031.es_CO
    dc.relation.referencesThompson R. C., O. Y. (2004). Lost at sea: where is all the plastic? Science.es_CO
    dc.relation.referencesThompson, R. C. (2015). Microplastics in the marine environment: Sources, consequences and solutions. Marine anthropogenic litter. , 185 - 200.es_CO
    dc.relation.referencesUNEP. (2015). Biodegradable Plastics and Marine Litter. Misconceptions, concerns and impacts on marine environments. United Nations Environment Programme (UNEP).es_CO
    dc.relation.referencesUNEP. (2016). Marine plastic debris and microplastics. Global lessons and research to inspire action and guide policy change. Nairobi: United Nations Environment Programme.es_CO
    dc.relation.referencesVan Cauwenberghe L., V. A. (2013). Microplastic pollution in deep-sea sediments. Environmental Pollution, 495-499.es_CO
    dc.relation.referencesVerschoor, A., Leon, d. P., Roex, E., Bellert, B., Rijkswaterstaat, & Peijnenburg, W. (2014). Quick scan and Prioritization of Microplastic Sources and Emissions. RIVM Letter report 2014-0156. The Netherlands: National Institute for Public Health and the Environment.es_CO
    dc.relation.referencesVianello, A., Boldrin, A., Guerriero, P., Moschino, V., Rella, R., Sturaro, A., & Da Ros, L. (2013). Microplastic particles in sediments of Lagoon of Venice, Italy: First observations on occurrence, spatial patterns and identification. Estuarine Coastal and Shelf Science, 54-61.es_CO
    dc.relation.referencesWang, F., Wong, C., Chen, D., Lu, X., Wang, F., & Zeng, E. (2018). Interaction of toxic chemicals with microplastics: a critical review. Water Res., 208-219.es_CO
    dc.relation.referencesWang, J., Tan, Z., Peng, J., Qiu, Q., Li, M., & Qiongxuan. (2016). The behaviors of microplastics in the marine environment. Marine Environmental Research, 7-17.es_CO
    dc.relation.referencesXanthos, D., & Walker, T. R. (2017). International policies to reduce plastic marine pollution from single-use plastics (plastic bags and microbeads): a review. Marine pollution bulletin, 17-26.es_CO
    dc.relation.referencesBrowne, M. A., Galloway, T., Thompson, R., Dissanayake, T. S., Galloway, D. M., & Niven, S. J. (2007). Microplastic an emerging contaminant of potential concern? Integrated environmental assessment and management, 559-561.es_CO
    dc.relation.referencesZiajahromi, S., Neale, A., P., Rintoul, L., Leusch, & D., F. (2017). Wastewater treatment plants as a pathway for microplastics: development of a new approach to sample wastewater-based microplastics. Water research, 93-99.es_CO
    dc.relation.referencesZiajahromi, S., Neale, P., A., Rintoul, L., Leusch, & D, F. (2017). Wastewater treatment plants as a pathway for microplastics: development of a new approach to sample wastewater-based microplastics. Water research, 93-99.es_CO
    dc.relation.referencesZitko, V., & Hanlon, M. (1991). Another source of pollution by plastics—skin cleaners with plastic scrubbers. Marine Pollution Bulletin, 41 - 42.es_CO
    dc.relation.referencesZubris, K. A., & Richards, B. K. (2005). Synthetic fibers as an indicator of land application of sludge. Environmental pollution, 201-211.es_CO
    dc.relation.referencesBrowne, M. A., Niven, S. J., Galloway, T. S., Rowland, S. J., Thompson, R., & C. (2013). Microplastic moves pollutants and additives to worms, reducing functions linked to health and biodiversity. Current Biology, 2388-2392.es_CO
    dc.relation.referencesBrowne, M. A., Niven, S. J., Teuten, E., Tonkin, A., Galloway, T., & Thompson, R. (2011). Accumulation of microplastic on shorelines woldwide: sources and sinks. Environmental science & technology, 9175-9179.es_CO
    dc.relation.referencesBuisson, H., Cote, P., Praderie, M., Paillard, H, & M. (1998). The use of immersed membranes. Water Science and Technology, 89-95.es_CO
    dc.relation.referencesBurra, K. G., & Gupta, A. K. (2018). Kinetics of synergistic effects in co-pyrolysis of biomass with plastic wastes. Applied energy, 408-418.es_CO
    dc.relation.referencesCarpenter, E. S. (1972). Plastic on the Sargasso Sea surface. . Science, 1240–1241.es_CO
    dc.relation.referencesCarr, S. A., Liu, J. T., & G., A. (2016). Transport and fate of microplastic particles in wastewater treatment plants. Water research, 174-182.es_CO
    dc.relation.referencesCheung, P., & Fok, L. (2017). Characterisation of plastic microbeads in facial scrubs and their estimated emissions in Mainland China. Water Res, 53-61.es_CO
    dc.relation.referencesClaessens, M., Cauwenberghe, V., Vandegehuchte, M. B., Janssen, C, & R. (2013). New techniques for the detection of microplastics in sediments and field collected organisms. Marine pollution bulletin, 227-233.es_CO
    dc.relation.referencesCocca, M., De Falco, F., Gullo, M. O., Gentile, G., Di Pace, E., Gelabert, L., & Mossotti, R. (2017). Microplastics from synthetic clothes: environmental impact and mitigation strategies. . International Conference on Environmental Science and Technology, Rhodes, Greece.es_CO
    dc.relation.referencesCole M., L. P. (2011). Microplastics as contaminants in the marine environment: A review. Marine Pollution Bulletin, 2588–2597.es_CO
    dc.relation.referencesCole, M., Webb, H., Lindeque, P. K., Fileman, E. S., Halsband, C., & Galloway, T. S. (2014). Isolation of microplastics in biota-rich seawater samples and marine organisms. Scientific reports, 4528.es_CO
    dc.relation.referencesCooper, D. A., & Corcoran, P. L. (2010). Effects of mechanical and chemical processes on the degradation of plastic beach debris on the island of Kauai, Hawaii. Marine Pollution Bulletin, 650-654.es_CO
    dc.relation.referencesCorcoran, P. L. (2009). Plastics and beaches: A degrading relationship. Marine Pollution Bulletin, 80–84.es_CO
    dc.relation.referencesCrawford., C. B. (2017). The emergence of plastics. En Microplastic Pollutants. (págs. 1- 17). Escocia: Elsevier Inc.es_CO
    dc.relation.referencesCundell, A. (1974). Plastics in the marine environment. Environmental Conservation., 63–68.es_CO
    dc.relation.referencesDa Costa, J. S.-S. (2016). (Nano)plastics in the environment – Sources, fates and effects. Science of The Total Environment., 15-26.es_CO
    dc.relation.referencesDe Falco, F., Gullo, M. P., Gentile, G., Di Pace, E., Cocca, M., Gelabert, L., & Mossotti, R. (2018). Evaluation of microplastic release caused by textile washing processes of synthetic fabrics. Environmental Pollution, 916-925.es_CO
    dc.relation.referencesDe Vargas, L. (2012). Capítulo 8. Obtenido de Flotación: https://es.slideshare.net/IvanVeraMontenegro/sistemas-daf-flotacin-por-airedisueltoes_CO
    dc.relation.referencesDekiff, J. H., Remy, D., Klasmeier, J., Fries, & E. (2014). Occurrence and spatial distribution of microplastics in sediments from Norderney. Environmental Pollution, 248-256.es_CO
    dc.relation.referencesDEPA. (2015). Microplastics – occurrences, effects and sources of releases to the environment in Denmark. Danish Environmental Protection Agency, 205.es_CO
    dc.relation.referencesDerraik, J. ( 2002). The pollution of the marine environment by plastic debris: A review. . Marine Pollution Bulletin, 842-852.es_CO
    dc.relation.referencesDerraik, J. G. (2002). The pollution of the marine environment by plastic debris: A review. Marine Pollution Bulletin, 842-852.es_CO
    dc.relation.referencesDris, R., Gasperi, J., Rocher, V., Saad, M., Renault, N., & Tassin, B. (2015). Microplastic contamination in an urban area: a case study in Greater Paris. Environmental Chemistry, 592-599.es_CO
    dc.relation.referencesDris, R., Gasperi, J., Rocher, V., Saad, M., Renault, N., & Tassin, B. (2015). Microplastic contamination in an urban area: a case study in Greater Paris. Environment Chem., 12 (5).es_CO
    dc.relation.referencesDubaish, F., & Liebezeit, G. (2013). Suspended microplastics and black carbon particles in the Jade system, southern North Sea. Water, Air, & Soil Pollution, 1352.es_CO
    dc.relation.referencesDuis, K., & Coors, A. (2016). Microplastics in the aquatic and terrestrial environment: sources (with a specific focus on personal care products), fate and effects. Environmental Sciences Europe, 2.es_CO
    dc.relation.referencesDümichen, E., Barthel, A. K., Braun, U., Bannick, C. G., Brand, K., Jekel, M., & Senz, R. (2015). Analysis of polyethylene microplastics in environmental samples, using a thermal decomposition method . Water research, 451-457.es_CO
    dc.relation.referencesDümichen, E., Eisentraut, P., Bannick, C. G., Barthel, A. K., Senz, R., & Braun, U. (2017). Fast identification of microplastics in complex environmental samples by a thermal degradation method. Chemosphere, 572-584.es_CO
    dc.relation.referencesDyachenko, A. M. (2017). Extraction and identification of microplastic particles from secondary wastewater treatment plant (WWTP) effluent. Analytical Methods, 1412-1418.es_CO
    dc.relation.referencesEerkes, M., Thompson, R., C., Aldridge, D., & C. (2015). Microplastics in freshwater systems: a review of the emerging threats, identification of knowledge gaps and prioritisation of research needs. Water Research, 63–82.es_CO
    dc.relation.referencesElert, A. M., Becker, R., Duemichen, E., Eisentraut, P., Falkenhagen, J., Sturm, H., & Braun, U. (2017). Comparison of different methods for MP detection: what can we learn from them, and why asking the right question before measurements matters? Environmental Pollution, 1256-1264.es_CO
    dc.relation.referencesEriksen, M., Mason, S., Wilson, S., Box, C., Zellers, A., Edwards, W., & Amato, S. (2013). Microplastic pollution in the surface waters of the Laurentian Great Lakes. Marine pollution bulletin, 177-182.es_CO
    dc.relation.referencesErni-Cassola, G., Gibson, M. I., Thompson, R. C., Christie-Oleza, J., & A. (2017). Lost, but found with Nile Red: a novel method for detecting and quantifying small microplastics (1 mm to 20 μm) in environmental samples . Environmental science & technology, 13641-13648.es_CO
    dc.relation.referencesEssel, Engel, L., Carus, M., Ahrens., & R.H. (2015). Sources of microplastics relevant to marine protection in Germany. Report No. (UFA-FB) 002147/E: Umwelt Bundesamt.es_CO
    dc.relation.referencesFendall, L. S., & Sewell, M. A. (2009). Contributing to marine pollution by washing your face: Microplastics in facial cleansers. Marine Pollution Bulletin, 1225-1228.es_CO
    dc.relation.referencesFilella, M. (2015). Questions of size and numbers in environmental research on microplastics: methodological and conceptual aspects. Environ. Chem. , 12 (5).es_CO
    dc.relation.referencesFiltración Rápida. (s.f.). Obtenido de Introducción: http://www.bvsde.paho.org/bvsacd/scan/020867/020867-17.pdfes_CO
    dc.relation.referencesFries, E., Dekiff, J. H., Willmeyer, J., Nuelle, M. T., Ebert, M., & Remy, D. (2013). Identification of polymer types and additives in marine microplastic particles 116 using pyrolysis-GC/MS and scanning electron microscopy. Environmental Science: Processes & Impacts, 1949-1956.es_CO
    dc.relation.referencesFries, E., Dekiff, J. H., Willmeyer, J., Nuelle, M. T., Ebert, M., & Remy, D. (2013). Identification of polymer types and additives in marine microplastic particles 116 using pyrolysis-GC/MS and scanning electron microscopy. Environmental Science: Processes & Impacts, 1949-1956.es_CO
    dc.relation.referencesFundación Centro Canario del Agua . (2003). Introducción a los Biorreactores de Membranas . Obtenido de http://fcca.es/documentos/05_documentos_por_temas/Recursos%20educativos% 20/IntroMBR.pdfes_CO
    dc.relation.referencesGatidou, G., Arvaniti, O. S., S., A., Stasinakis, A, & S. (2019). Review on the occurrence and fate of microplastics in Sewage Treatment Plants. Journal of Hazardous Materials, 504-512.es_CO
    dc.relation.referencesGESAMP, (IMO, FAO, UNESCO, IOC, UNIDO, . . . UNDP). (2015). Sources, fate and effects of microplastics in the marine environment: a global assessment. Londres: Kershaw, P.J., ed.es_CO
    dc.relation.referencesGESAMP, IMO, FAO, UNESCO, IOC, UNIDO, . . . UNDP. (2016). Sources, fate and effects of microplastics in the marine environment: second phase assessment part one. Joint Group of Experts on the Scientific Aspects of Experts on the Scientific Aspects of Marine Environmental Protection: Kershaw P.J. and Rochman, C. eds.es_CO
    dc.relation.referencesGouveia, R., Antunes, J., Sobral, P., Amaral, L., & A. (2018). Microplastics from Wastewater Treatment Plants—Preliminary Data. . In Proceedings of the International Conference on Microplastic Pollution in the Mediterranean Sea Springer, Cham., 3-57.es_CO
    dc.relation.referencesGreenpeace. (2019). Datos sobre la producción de Plásticos. Greenpeace Magazine.es_CO
    dc.relation.referencesGregory, M. R. ( 1983). Virgin plastic granules on some beaches of Eastern Canada and Bermuda. . Marine Environmental Research., 73–92.es_CO
    dc.relation.referencesGregory, M. R. (1996). Plastic ‘scrubbers’ in hand cleansers: a further (and minor) source for marine pollution identified. Marine Pollution Bulletin, 867–871.es_CO
    dc.relation.referencesGurung, K. B. (2014). Feasibility Study of Submerged Membrane Bioreactor (Mbr) As an Alternative to Conventional Activated Sludge Process (Casp) For Municipal Wastewater Treatment: A Pilot Scale Study. Lappeeranta University of Tecnology , 6-101.es_CO
    dc.relation.referencesHarrison, J. P., Ojeda, J., J., Romero-González, M, & E. (2012). The applicability of reflectance micro-Fourier-transform infrared spectroscopy for the detection of synthetic microplastics in marine sediments. Science of the Total Environment, 455-463.es_CO
    dc.relation.referencesHidalgo-Ruz, V., Gutow, L., Thompson, R., C., Thiel, & M. (2012). Microplastics in the marine environment: a review of the methods used for identification and quantification. Environmental science & technology, 3060-3075.es_CO
    dc.relation.referencesHintersteiner, I., Himmelsbach, M., Buchberger, W, & W. (2015). Characterization and quantitation of polyolefin microplastics in personal-care products using hightemperature gel-permeation chromatography. Analytical and bioanalytical chemistry, 1253-1259.es_CO
    dc.relation.referencesIN-EKO TEAM. (2019). Filtro de disco. Retrieved from https://www.ineko.es/produkty/microfiltracion-y-filtracion/es_CO
    dc.relation.referencesJeong, C. B., Won, E. J., Kang, H. M., Lee, M. C., Hwang, D. S., Hwang, U. K., & Lee, J. S. (2016). Microplastic size-dependent toxicity, oxidative stress induction, and p-JNK and p-p38 activation in the monogonont rotifer (Brachionus koreanus) . Environmental science & technology, 8849-8857.es_CO
    dc.relation.referencesJing, S., Xiaohu, D., Qilin, W., Mark, C., M., v. L., & Ni, B.-J. (2019). Microplastics in wastewater treatment plants: Detection, occurrence and removal. Water Research, 21-37.es_CO
    dc.relation.referencesKarlsson, T. (2015). Can microliter in sediment and biota be quantified? Method development and analysis of microliter in field collected biota and sediment. University of Gothenburg and VU University of Amsterdam-IVM.es_CO
    dc.relation.referencesLares, M., Ncibi, M., C., Sillanpää, M., Sillanpää, & M. (2018). Occurrence, identification and removal of microplastic particles and fibers in conventional activated sludge process and advanced MBR technology. Water Research, 236-246.es_CO
    dc.relation.referencesLeslie, H. A., Brandsma, S. H., Van Velzen, M., M., J., & Vethaak, A. D. (2017). Microplastics en route: Field measurements in the Dutch river delta and Amsterdam canals, wastewater treatment plants, North Sea sediments and biota. Environment international, 133-142.es_CO
    dc.relation.referencesLi, J., Liu, H., & Chen, J. P. (2018-a). Microplastics in freshwater systems: A review on occurrence, environmental effects, and methods for microplastics detection. Water research, 362-374.es_CO
    dc.relation.referencesLiebezeit, G., & Liebezeit, E. (2014). Synthetic particles as contaminants in German beers. Food Additives & Contaminants, Part A, 1574-1578.es_CO
    dc.relation.referencesLöder, M. G., Imhof, H. K., Ladehoff, M., Löschel, L. A., Lorenz, C., Mintenig, S., & Gerdts, G. (2017). Enzymatic purification of microplastics in environmental samples. Environmental science & technology, 14283-14292.es_CO
    dc.relation.referencesLöder, M., J., G., Kuczera, M., Mintenig, S., Lorenz, C., & Gerdts, G. (2015). Focal plane array detector-based micro-Fourier-transform infrared imaging for the analysis of microplastics in environmental samples. Environmental Chemistry, 563-581.es_CO
    dc.relation.referencesMagnusson, K., & Norén, F. (2014). Screening of microplastic particles in and downstream a wastewater treatment plant. Estocolmo: IVL Swedish Environmental Research Institutees_CO
    dc.relation.referencesMahon, A. M., O’Connell, B., Healy, M. G., O’Connor, I., Officer, R., Nash, R., & Morrison, L. (2016). Microplastics in sewage sludge: effects of treatment. Environmental Science & Technology, 810-818.es_CO
    dc.relation.referencesMason, S. A., Garneau, D., Sutton, R., Chu, Y., Ehmann, K., Barnes, J., & Rogers, D. L. (2016). Microplastic pollution is widely detected in US municipal wastewater treatment plant effluent. Environmental Pollution, 1045-1054.es_CO
    dc.relation.referencesMasura, J., Baker, J. E., Foster, D., G., Arthur, C., & Herring, C. (2015). Laboratory methods for the analysis of microplastics in the marine environment: recommendations for quantifying synthetic particles in waters and sediments.es_CO
    dc.relation.referencesMcCormick, A., Hoellein, T. J., Mason, A., S., Schluep, J., & Kelly, J. J. (2014). Microplastic is an abundant and distinct microbial habitat in an urban river. Environmental science & technology, 11863-11871.es_CO
    dc.relation.referencesMedrano, D. E., & Thompson., R. (2018). Occurrence, Fate, and Effect of Microplastics in Freshwater Systems. En Microplastic Contamination in Aquatic Environments. (págs. 95-132). Aberdeen: Elsevier Inc.es_CO
    dc.relation.referencesMichielssen, M. R. (2016). Fate of microplastics and other small anthropogenic litter (SAL) in wastewater treatment plants depends on unit processes employed. Environmental Science: Water Research & Technology, 1064-1073.es_CO
    dc.relation.referencesMike A. Neal, A. L. (2009). Applications and societal benefits of plastics. Philosophical Transactions of the Royal Society B., 1977–1984.es_CO
    dc.relation.referencesMintenig, S. M., Int Veen, I., Löder, M. G., Primpke, S., & Gerdts, G. (2017). Identification of microplastic in effluents of waste water treatment plants using focal plane array-based micro-Fourier-transform infrared imaging. Water research, 365-372.es_CO
    dc.relation.referencesMintenig, S. M., Int-Veen, I., Löder, M. G., Primpke, S., Gerdts, & G. (2017). Identification of microplastic in effluents of waste water treatment plants using focal plane array-based micro-Fourier-transform infrared imaging. Water research, 365-372.es_CO
    dc.relation.referencesMurphy, F., Ewins, C., Carbonnier, F., Quinn, & B. (2016). Wastewater treatment works (WwTW) as a source of microplastics in the aquatic environment. Environmental science & technology, 5800-5808.es_CO
    dc.relation.referencesNapper, I., & Thompson, R. (2016). Release of synthetic microplastic plastic fibers from domestic washing machines: effects of fabric type and washing conditions. Marine Pollution Bulletin, 178-185.es_CO
    dc.relation.referencesNapper, I., E., Bakir, A., J., S.H, & Rowland. (2015). Characterisation, quantity and sorptive properties of microplastics extracted from cosmetics. Marine Pollution Bulletin, 178-185.es_CO
    dc.relation.referencesNEA. (2014). (Núcleo de Estudios Ambientales). Sources of microplastics to the marine environment, Norwegian Environment Agency . (Miljødirektoratet).es_CO
    dc.relation.referencesNOAA. (2018). What are microplastics? Sitio Web del Servicio Nacional de Océanos, Tomado de: https://oceanservice.noaa.gov/facts/microplastics.html.es_CO
    dc.relation.referencesNuelle, M. T., Dekiff, J. H., Remy, D., Fries, & E. (2014). A new analytical approach for monitoring microplastics in marine sediments. Environmental Pollution, 161-169.es_CO
    dc.relation.referencesO’Brine, T. &. (2010). Degradation of plastic carrier bags in the marine environment. Marine Pollution Bulletin, 2279–2283.es_CO
    dc.relation.referencesOlsen, Y.C., R., T., P., M. R., Davis A., R., J., S., . . . G., W. (2004). Lost at sea: where is all the plastic? Science, 304, 838.es_CO
    dc.relation.referencesPatel, M., Goyal, B., Bhadada, S., Bhatt, J., Amin, & A.F. (2009). Getting into the Brain. Approaches to enhance Brain Drug Delivery. Health & Medicall Collection, 35.es_CO
    dc.relation.referencesPemba, A., Rostagno, M., Miller, S. A., Fuji, M., Enoki, T., & Lee, T. A. (2014). Cyclic and spirocyclic polyacetal ethers from lignin-based aromatics. Polymer Chemistry, 3214-3221.es_CO
    dc.relation.referencesPEMRG. (2018). Análisis de los datos sobre la producción, la demanda y los residuos de plásticos en Europa. Bruselas : Convenio Market & Strategy GmbH.es_CO
    dc.relation.referencesPettipas, S. M. (2016). A Canadian policy framework to mitigate plastic marine pollution. Política Marina, 117 - 122.es_CO
    dc.relation.referencesPfaudler. (2019). Highlight . Retrieved from La Solución de Cloruro de Polialuminio (PAC) de Pfaudler: https://www.pfaudler.com/es/highlight/PolialuminioPACdePfaudleres_CO
    dc.relation.referencesPirc, U., Vidmar, M., Mozer, A., Kržan, A., & M. (2016). Emissions of microplastic fibers from microfiber fleece during domestic washing. Environmental Science and Pollution Research, 22206-22211.es_CO
    dc.rights.accessrightshttp://purl.org/coar/access_right/c_abf2es_CO
    dc.type.coarversionhttp://purl.org/coar/resource_type/c_2df8fbb1es_CO
    Aparece en las colecciones: Ingeniería Ambiental

    Ficheros en este ítem:
    Fichero Descripción Tamaño Formato  
    Peña_2019_TG.pdfPeña_2019_TG1,87 MBAdobe PDFVisualizar/Abrir


    Los ítems de DSpace están protegidos por copyright, con todos los derechos reservados, a menos que se indique lo contrario.