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    dc.contributor.authorGarcía Palacio, Michael Alejandro.-
    dc.date.accessioned2022-12-15T13:51:20Z-
    dc.date.available2020-09-23-
    dc.date.available2022-12-15T13:51:20Z-
    dc.date.issued2020-
    dc.identifier.citationGarcía Palacio, M. A. (2020). Análisis de las técnicas implementadas para la detección de contaminantes en el agua potable [Trabajo de Grado Pregrado, Universidad de Pamplona] Repositorio Hulago Universidad de Pamplona. http://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/5413es_CO
    dc.identifier.urihttp://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/5413-
    dc.descriptionEl autor no proporciona la información sobre este ítem.es_CO
    dc.description.abstractEl autor no proporciona la información sobre este ítem.es_CO
    dc.format.extent49es_CO
    dc.format.mimetypeapplication/pdfes_CO
    dc.language.isoeses_CO
    dc.publisherUniversidad de Pamplona – Facultad de Ingenieras y Arquitectura.es_CO
    dc.subjectEl autor no proporciona la información sobre este ítem.es_CO
    dc.titleAnálisis de las técnicas implementadas para la detección de contaminantes en el agua potable.es_CO
    dc.typehttp://purl.org/coar/resource_type/c_7a1fes_CO
    dc.date.accepted2020-06-23-
    dc.relation.referencesAguas de Cartagena. (01 de Mayo de 2020). Obtenido de https://acuacar-web prod.azurewebsites.net/Acuacar/Gesti%C3%B3n-Ambiental/Ciclo-Integral-del-Agues_CO
    dc.relation.referencesAmerican Public Health Association (APHA), American Water Works Association (AWWA), Water Pollution Control Federation (WPCF). (2016). Métodos normalizados para análisis de aguas potables y residuales. Madrid: Ediciones Díaz de Santos.es_CO
    dc.relation.referencesAndreas N. Angelakis, Shane A. Snyder. (2015). Wastewater Treatment and Reuse: Past, Present, and Future. water, 4887-4895.es_CO
    dc.relation.referencesB. Højris, S. N. Kornholt, S. C. B. Christensen, H.-J. Albrechtsen, L. S. Olesen. (2018). Detection of drinking water contamination by an optical real-time bacteria sensor. H2Open Journal, 162 - 168.es_CO
    dc.relation.referencesBatte M., Mathieu L., Laurent P., Prevost M. (2015). Influence of phosphate and disinfection on the composition of biofilms produced from drinking water, as measured by fluorescence in situ hybridization. Canadian Journal of Microbiology, 741-753.es_CO
    dc.relation.referencesBolaños, J. (2016). Determinación de Arsénico en agua potable del cantón del Grecia. InterSedes: Revista de las Sedes, 1 - 11.es_CO
    dc.relation.referencesCárdenas, C. (2015). DIiseño de una planta de tratamiento de agua potable: Caso de estudio en un municipio de Santader. Universidad Industrial de Santander, 1 - 75.es_CO
    dc.relation.referencesClaudio De Stefano, Luigi Ferrigno, Francesco Fontanella, Luca Gerevini, Alessandra Scotto di Freca. (2020). A novel PCA-based approach for building on-board sensor classifiers for water contaminant detection. Pattern Recognition Letters, 375–381.es_CO
    dc.relation.referencesDomínguez, J. (2020). Capillary electrophoresis coupled to electrospray mass spectrometry for the determination of organic and inorganic arsenic compounds in water samples. Talanta.es_CO
    dc.relation.referencesEdwin Hernández, Carlos Corredor. (2017). Diseño y construcción de una planta modelo de tratamiento para la potabilización de agua. Universidad Católica de Colombia, 1 - 82.es_CO
    dc.relation.referencesEiko Nagamachi, Yasuhiro Kanemasa. (2014). Development of a new device for the detection of gas production in coliform group bacteria determination. Water Research, 1131-1135.es_CO
    dc.relation.referencesFidson Vesga, Yolanda Moreno, Antonia Ferrús, Claudia Campos, Alicia Trespalaciosa. (2018). Detection of Helicobacter pylori in drinking water treatment plants in Bogotá, Colombia, 36 using cultural and molecular techniques. International Journal of Hygiene and Environmental Healthes_CO
    dc.relation.referencesFundación Nacional de Salud. (2015). Manual Práctico de Análisis de Agua. Brasilia: Ministerio de Saludes_CO
    dc.relation.referencesG.S. Ghugare, A. Nair, V. Nimkande, P. Sarode, P. Rangari and K. Khairnar. (2016). Membrane filtration immobilization technique — a simple and novel method for primary isolation and enrichment of bacteriophages. Journal o f Applied Microbiology, 531-539.es_CO
    dc.relation.referencesGuilherme Sabin, Osmar Prestes, Martha Adaime; Renato Zanella. (2015). Multiresidue determination of pesticides in drinking water by gas chromatography-mass spectrometry after solid-phase extraction. Journal of the Brazilian Chemical Society.es_CO
    dc.relation.referencesHitoshi Kodamatani, Hitomi Yamasaki, Takeru Sakaguchi, Shinya Itoh, Yoshimi Iwaya. (2016). Rapid method for monitoring N-nitrosodimethylamine in drinking water at the ng/L level without pre-concentration using high-performance liquid chromatography chemiluminescence detection. Journal of Chromatography A, 202 - 206.es_CO
    dc.relation.referencesIDEAM. (2007). Determinación de Escherichia Coli y coliformes totales en agua por el método de filtración por membrana en Agar Chromocult. Instituto de Hidrología, Meteorología y Estudios Ambientales, 1 - 17.es_CO
    dc.relation.referencesIrena Vopálenská, Libuše Váchová, Zdena Palková. (2015). New biosensor for detection of copper ions in water based on immobilized genetically modified yeast cells. Biosensors and Bioelectronics, 160–167.es_CO
    dc.relation.referencesIsabel Douterelo, Joby Boxall, Peter Deines, Raju Sekar, Katherine Fish, Catherine Biggs. (2015). Methodological approaches for studying the microbial ecology of drinking water distribution systems. Water Research, 134 - 156.es_CO
    dc.relation.referencesIzabela Sokolowska, Jingjie Mo, Fatie Rahimi, Carol McVean, Lars Meijer. (2020). Implementation of a High-Resolution Liquid Chromatography−Mass Spectrometry Method in Quality Control Laboratories for Release and Stability Testing of a Commercial Antibody Product. Analytical Chemistry, 2369 - 2373es_CO
    dc.relation.referencesJ. Baudart, P. Lebaron. (2015). Rapid detection of Escherichia coli in waters using fluorescent in situ hybridization, direct viable counting and solid phase cytometry. Journal of Applied Microbiology, 1364-1375.es_CO
    dc.relation.referencesJ. Boyd, S. Hrudey, S. Richardson, X. Li. (2016). Solid-phase extraction and high-performance liquid chromatography mass spectrometry analysis of nitrosamines in treated drinking water and wastewater. Trends in Analytical Chemistry, 1410-1421.es_CO
    dc.relation.referencesJamie Bartram, Richard Ballance. (1996). Microbiological Analyses . En R. B. Jamie Bartram, Water Quality Monitoring - A Practical Guide to the Design and Implementation of Freshwater Quality Studies and Monitoring Programmes (págs. 244 - 267). Londrés: United Nations Environment Programme.es_CO
    dc.relation.referencesJeniffer Carrillo, Cristhian Durán, Ramón García. (2019). Concentration Detection of the E. coli Bacteria in Drinking Water Treatment Plants through an E-Nose and a Volatiles Extraction System (VES). water.es_CO
    dc.relation.referencesJenni Ikonen, Tarja Pitkanen, Pascal Kosse, Robert Ciszek, Mikko Kolehmainen, Ilkka Miettinen. (2017). On-line detection of Escherichia coli intrusion in a pilot-scale drinking water distribution system. Journal of Environmental Management, 384-392.es_CO
    dc.relation.referencesJohnatan Gutiérrez, Álvaro Ramírez, Rodrigo Rivas, Balmes Linares. (2015). Tratamiento de lodos generados en el proceso convencional de potabilización de agua. Ingenierías Universidad de Medellín, 13 - 27.es_CO
    dc.relation.referencesKamlesh Soni, Ashwin Balasubramanian, Ali Beskok, Suresh Pillai. (2015). Zeta potential of selected bacteria in drinking water when dead, starved, or exposed to minimal and rich culture media. Current Microbiology, 53 - 57.es_CO
    dc.relation.referencesLópez, K. (2015). Validación del método filtración por membrana para análisis microbiológico de coliformes totales y Escherichia coli en aguas marinas. Centro de Investigaciones Oceanográficas e Hidrográficas del Caribe (CIOH), 215 - 220.es_CO
    dc.relation.referencesM. Umar, J. Kambai, I. Mohammed, J. Oko, A. Obafemi, K. Ajiya, A. Yaya. (2019). Bacteriological Quality Assessment and Antibiogram Profile of Bacteria Associated with Sachet Drinking Water Sold at Zaria, Northern Nigeria. International Journal of Pathogen Research, 1 - 13.es_CO
    dc.relation.referencesMariana Almeida, Tiago Madeira, Lycio Watanabe, Paulo Cesar Meletti. (2019). Pesticide Determination in Water Samples from a Rural Area by Multi-Target Method Applying Liquid Chromatography-Tandem Mass Spectrometry. Journal of the Brazilian Chemical Society, 1678-1689es_CO
    dc.relation.referencesMariya N. Koleva, Songsong Liu, Craig Styanb, Lazaros Papageorgiou. (2016). Multi-objective Optimisation Approach for the Synthesis of Water Treatment Plants. Computer Aided Process Engineering, 2379 - 2384.es_CO
    dc.relation.referencesMinisterio de la protección social. (2007). Protección y Control de la Calidad del Agua para Consumo Humano. Colombia: Decreto 1575 DE 2007es_CO
    dc.relation.referencesMohamed Farhaoui, Mustapha Derraz. (2016). Review on Optimization of Drinking Water Treatment Process. Journal of Water Resource and Protection, 777 - 786.es_CO
    dc.relation.referencesMyounggon Kim, Taekeon Jung, Youngjin Kim, Changgeun Lee, Kyungchul Woo, Jae Hun Seol, Sung Yang. (2015). A microfluidic device for label-free detection of Escherichia coli in drinking water using positive dielectrophoretic focusing, capturing, and impedance measurement. Biosensors and Bioelectronics, 1011-1015.es_CO
    dc.relation.referencesNurit Oliker, Avi Ostfeld. (2015). Network hydraulics inclusion in water quality event detection using multiple sensor stations data. Water Research, 47 - 58.es_CO
    dc.relation.referencesOkonko Iheanyi Omezuruike, Adejoye Oluseyi Damilola, Ogunnusi Tolulope Adeola, Fajobi Enobong, Shittu Olufunke. (2015). Microbiological and physicochemical analysis of different water samples used for domestic purposes in Abeokuta and Ojota, Lagos State, Nigeria. African Journal of Biotechnology, 617-621.es_CO
    dc.relation.referencesOSE. (Noviembre de 2019). Obras Sanitarias del Estado | Uruguay. Obtenido de Etapas del Proceso de Potabilización: http://www.ose.com.uy/agua/etapas-del-proceso-de potabilizaciones_CO
    dc.relation.referencesQiuhua Shen, Xiaojie Wang, Enfeng Chen, Zhenchao Ma . (2019). Comparative Study on Test Methods of Total Coliforms in Domestic Drinking Water. Earth and Environmental Science.es_CO
    dc.relation.referencesRijal, N. (10 de 09 de 2019). Microbe Online. Recuperado el 12 de 05 de 2020, de https://microbeonline.com/analysis-of-water-membrane-filtration-technique/es_CO
    dc.relation.referencesRodger Baird, Andrew Eaton, Eugene Rice. (2017). Standard Methods for the Examination of Water and Wastewater. Washington: American Public Health Association.es_CO
    dc.relation.referencesSabiha Tok, Kevin de Haan, Derek Tseng, Can Firat Usanmaz. (2019). Early detection of E. coli and total coliform using an automated, colorimetric and fluorometric fiber optics-based device. Lab on a Chies_CO
    dc.relation.referencesSalamanca, E. (2015). Tratamiento de aguas para el consumo humano. Módulo Arquitectura CUC, 29-48es_CO
    dc.relation.referencesSharad, M. (2018). Ionization Techniques in Mass Spectrometry: A Review. Mass Spectrometry & Purification Techniques.es_CO
    dc.relation.referencesSyahidah Zulkifli, Herlina Rahim, Woei-Jye Lau. (2017). Detection of contaminants in water supply: A review on state-of-the-art monitoring technologies and their applications. Sensors and Actuators B: Chemical, 2657–2689.es_CO
    dc.relation.referencesTeri Bigham, James Dooley, Nigel Ternan, William Snelling, Hector Castelan, James Davis. (2019). Assessing microbial water quality: Electroanalytical approaches to the detection of coliforms. Trends in Analytical Chemistryes_CO
    dc.relation.referencesVahid Moradi, Emmanuelle Caws, Peter Wild, Heather L. Buckley. (2020). A simple method for detection of low concentrations of fluoride in drinking water. Sensors and Actuators A: Physical.es_CO
    dc.relation.referencesXinZhang, Charanjit Saini, ChrisPohl, Yan Liu. (2020). Fast determination of nine haloacetic acids, bromate and dalapon in drinking water samples using ion chromatography– electrospray tandem mass spectrometry. Journal of Chromatography A.es_CO
    dc.relation.referencesYan Peng, Lata Gautam, Sarah Hall. (2019). The detection of drugs of abuse and pharmaceuticals in drinking water using solid-phase extraction and liquid chromatography-mass spectrometry. Chemosphere, 438-447.es_CO
    dc.relation.referencesZahra Moghaddama, Massoud Kaykhaii, Mostafa Khajeh, Ali Oveisi. (2017). Synthesis of UiO 66-OH zirconium metal-organic framework and its application for selective extraction and trace determination of thoriumin water samples by spectrophotometry. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 76 - 82es_CO
    dc.relation.referencesZhaodan Wang, Guosheng Xiao, Nong Zhou, Wenhua Qi, Lin Han, Yu Ruan, Dongqin Guo, Hong Zhou. (2015). Comparison of two methods for detection of fecal indicator bacteria used in water quality monitoring of the Three Gorges Reservoir. Journal of Environmental Sciences , 42 - 51es_CO
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    dc.type.coarversionhttp://purl.org/coar/resource_type/c_2df8fbb1es_CO
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