dc.contributor.author | Pérez Mesa A. | |
dc.contributor.author | Saldarriaga Molina J.C. | |
dc.contributor.author | Ríos L.A. | |
dc.contributor.author | Ocampo Echeverri E. | |
dc.contributor.author | Ocampo Echeverri D. | |
dc.date.accessioned | 2024-12-27T20:52:01Z | |
dc.date.available | 2024-12-27T20:52:01Z | |
dc.date.created | 2024 | |
dc.identifier.issn | 20734441 | |
dc.identifier.uri | http://hdl.handle.net/11407/8696 | |
dc.description | This research aims to propose management strategies to mitigate eutrophication caused by inefficient wastewater treatment plants in Colombia. The information analyzed was provided by environmental authorities such as IDEAM, CORANTIOQUIA, and CORNARE in Antioquia, where the average concentrations of phosphorus in wastewater from municipal, livestock, and industrial activities are 5.1, 30.6, and 29.1 mg P/L. The total nitrogen concentrations are 77, 143, and 121 mg N/L, respectively, surpassing the limit concentrations stated by the European Union, the United States, and Mexico, among others, while Colombia has not established its own limits. Including limitations for nutrient concentrations will align Colombia with the 2050 Sustainable Development Goals (SDGs), where microalgae species like Chlorella or Scenedesmus could be used in wastewater treatment systems for municipalities and industries. These microalgae can capture organic matter, nutrients, and greenhouse emissions and reduce the concentrations observed in natural water. They could also be an alternative for capturing heavy metals and some pollutants of emerging concern. In addition to the ecological and social benefits, the algal biomass could be valorized by transforming it into biological products such as fuels, fertilizers, and pigments when micropollutants are not present, reducing operational costs for treatment systems. © 2024 by the authors. | |
dc.language.iso | eng | |
dc.relation.isversionof | https://www.scopus.com/inward/record.uri?eid=2-s2.0-85202433680&doi=10.3390%2fw16162215&partnerID=40&md5=d93a27037c3c46e3b565c15c54ae61f7 | |
dc.source | Water (Switzerland) | |
dc.source | Water | |
dc.source | Scopus | |
dc.subject | Biofertilizers | eng |
dc.subject | Eutrophication | eng |
dc.subject | Microalgae | eng |
dc.subject | Nutrients | eng |
dc.subject | Wastewater | eng |
dc.subject | Biological water treatment | eng |
dc.subject | Eutrophication | eng |
dc.subject | Groundwater pollution | eng |
dc.subject | Kyoto Protocol | eng |
dc.subject | Nitrogen fertilizers | eng |
dc.subject | Wastewater treatment | eng |
dc.subject | Biofertilizers | eng |
dc.subject | Case-studies | eng |
dc.subject | Colombia | eng |
dc.subject | Environmental Authority | eng |
dc.subject | Management strategies | eng |
dc.subject | Micro-algae | eng |
dc.subject | Microalga | eng |
dc.subject | Nutrient discharges | eng |
dc.subject | Nutrient management | eng |
dc.subject | Waste water treatment plants | eng |
dc.subject | Microalgae | eng |
dc.title | Diagnosis of Nutrient Discharges and Management Alternatives in Developing Countries and the Use of Microalgae as a Potential Solution: A Case Study from Different Provinces in Antioquia, Colombia | eng |
dc.type | Article | |
dc.rights.accessrights | info:eu-repo/semantics/restrictedAccess | |
dc.publisher.program | Ingeniería en Energía | |
dc.type.spa | Artículo de revista | |
dc.identifier.doi | 10.3390/w16162215 | |
dc.relation.citationvolume | 16 | |
dc.relation.citationissue | 16 | |
dc.publisher.faculty | Facultad de Ingenierías | |
dc.affiliation | Pérez Mesa A., Industrial and Chemical Processes Group, School of Engineering, Universidad de Antioquia, Calle 70 No. 52-21, Medellín, 050010, Colombia | |
dc.affiliation | Saldarriaga Molina J.C., Environmental School, School of Engineering, Universidad de Antioquia, Calle 70 No. 52-21, Medellín, 050010, Colombia | |
dc.affiliation | Ríos L.A., Industrial and Chemical Processes Group, School of Engineering, Universidad de Antioquia, Calle 70 No. 52-21, Medellín, 050010, Colombia | |
dc.affiliation | Ocampo Echeverri E., School of Engineering, University of Medellín, Carrera 87 No 30-65, Medellín, 050026, Colombia | |
dc.affiliation | Ocampo Echeverri D., Industrial and Chemical Processes Group, School of Engineering, Universidad de Antioquia, Calle 70 No. 52-21, Medellín, 050010, Colombia | |
dc.relation.references | Zhang H., Li H., Gao D., Yu H., Source identification of surface water pollution using multivariate statistics combined with physicochemical and socioeconomic parameters, Sci. Total. Environ, 806, (2022) | |
dc.relation.references | Colombia un Cambio de Rumbo, Seguridad Hidrica para la Recuperación y Crecimiento Sostenible, (2020) | |
dc.relation.references | A Compilation of Cost Data Associated with the Impacts and Control of Nutrient Pollution Cost of Nutrient Pollution, (2015) | |
dc.relation.references | Sikosana M.L., Sikhwivhilu K., Moutloali R., Madyira D.M., Municipal wastewater treatment technologies: A review, Procedia Manuf, 35, pp. 1018-1024, (2019) | |
dc.relation.references | Arias D.M., Sole-Bundo M., Garfi M., Ferrer I., Garcia J., Uggetti E., Integrating microalgae tertiary treatment into activated sludge systems for energy and nutrients recovery from wastewater, Bioresour. Technol, 247, pp. 513-519, (2017) | |
dc.relation.references | Panamericana Formas e Impresos S. A, (2023) | |
dc.relation.references | Resolución 1256. pp. 1–6, (2021) | |
dc.relation.references | Resolución 0631-2015, (2015) | |
dc.relation.references | Molina M.T.F., Sanchez L.N.P., Benitez S.V.B., Sanchez L.J.G., Saenz A.P., Echavarria D.M.P., Caracterización de los Sedimentos de tres Embalses de Empresas Públicas de Medellín, Colombia, (2017) | |
dc.relation.references | Moreno A.R., Evaluación del riesgo de eutrofización del embalse El Quimbo, Huila (Colombia), Rev. Logos Cienc. Tecnol, 10, pp. 172-192, (2018) | |
dc.relation.references | Abdel-Raouf N., Al-Homaidan A.A., Ibraheem I.B.M., Microalgae and wastewater treatment, Saudi J. Biol. Sci, 19, pp. 257-275, (2012) | |
dc.relation.references | Documento CONPES 4088, (2022) | |
dc.relation.references | Miranda A.M., Ocampo D., Vargas G.J., Rios L.A., Saez A.A., Nitrogen content reduction on scenedesmus obliquus biomass used to produce biocrude by hydrothermal liquefaction, Fuel, 305, (2021) | |
dc.relation.references | Vacca Jimeno V.A., Angulo Mercado E.R., Puentes Ballesteros D.M., Torres Yepez J.G., Plaza Vega M.E., Uso de la microalga Chlorella sp. viva en suspensión en la decoloración del agua residual de una empresa textile, Prospectiva, 15, pp. 93-99, (2017) | |
dc.relation.references | Ruiz J., Alvarez-Diaz P.D., Arbib Z., Garrido-Perez C., Barragan J., Perales J.A., Performance of a flat panel reactor in the continuous culture of microalgae in urban wastewater: Prediction from a batch experiment, Bioresour. Technol, 127, pp. 456-463, (2013) | |
dc.relation.references | Vassalle L., Sunyer-Caldu A., Uggetti E., Diez-Montero R., Diaz-Cruz M.S., Garcia J., Garcia-Galan M.J., Bioremediation of emerging micropollutants in irrigation water. The alternative of microalgae-based treatments, J. Environ. Manag, 274, (2020) | |
dc.relation.references | Garcia-Galan M.J., Monllor-Alcaraz L.S., Postigo C., Uggetti E., de Alda M.L., Diez-Montero R., Garcia J., Microalgae-based bioremediation of water contaminated by pesticides in peri-urban agricultural areas, Environ. Pollut, 265, (2020) | |
dc.relation.references | Garcia-Galan M.J., Matamoros V., Uggetti E., Diez-Montero R., Garcia J., Removal and environmental risk assessment of contaminants of emerging concern from irrigation waters in a semi-closed microalgae photobioreactor, Environ. Res, 194, (2020) | |
dc.relation.references | Robles A., Capson-Tojo G., Gales A., Ruano M.V., Sialve B., Ferrer J., Steyer J.-P., Microalgae-bacteria consortia in high-rate ponds for treating urban wastewater: Elucidating the key state indicators under dynamic conditions, J. Environ. Manag, 261, (2020) | |
dc.relation.references | de Morais E.G., Marques J.C.A., Cerqueira P.R., Dimas C., Sousa V.S., Gomes N., Teixeira M.R., Nunes L.M., Varela J., Barreira L., Tertiary urban wastewater treatment with microalgae natural consortia in novel pilot photobioreactors, J. Clean. Prod, 378, (2022) | |
dc.relation.references | Ziganshina E.E., Bulynina S.S., Ziganshin A.M., Growth Characteristics of Chlorella sorokiniana in a Photobioreactor during the Utilization of Different Forms of Nitrogen at Various Temperatures, Plants, 11, (2022) | |
dc.relation.references | Almomani F., Bhosale R.R., Bio-sorption of toxic metals from industrial wastewater by algae strains Spirulina platensis and Chlorella vulgaris: Application of isotherm, kinetic models and process optimization, Sci. Total. Environ, 755, (2021) | |
dc.relation.references | Zhao X., Kumar K., Gross M.A., Kunetz T.E., Wen Z., Evaluation of revolving algae biofilm reactors for nutrients and metals removal from sludge thickening supernatant in a municipal wastewater treatment facility, Water Res, 143, pp. 467-478, (2018) | |
dc.relation.references | Castellanos-Estupinan M.A., Carrillo-Botello A.M., Rozo-Granados L.S., Becerra-Moreno D., Garcia-Martinez J.B., Urbina-Suarez N.A., Lopez-Barrera G.L., Barajas-Solano A.F., Bryan S.J., Zuorro A., Removal of Nutrients and Pesticides from Agricultural Runoff Using Microalgae and Cyanobacteria, Water, 14, (2022) | |
dc.relation.references | Arbib Z., Ruiz J., Alvarez-Diaz P., Garrido-Perez C., Barragan J., Perales J.A., Long term outdoor operation of a tubular airlift pilot photobioreactor and a high rate algal pond as tertiary treatment of urban wastewater, Ecol. Eng, 52, pp. 143-153, (2013) | |
dc.relation.references | Ruiz J., Arbib Z., Alvarez-Diaz P.D., Garrido-Perez C., Barragan J., Perales J.A., Photobiotreatment model (PhBT): A kinetic model for microalgae biomass growth and nutrient removal in wastewater, Environ. Technol, 34, pp. 979-991, (2013) | |
dc.relation.references | Matamoros V., Gutierrez R., Ferrer I., Garcia J., Bayona J.M., Capability of microalgae-based wastewater treatment systems to remove emerging organic contaminants: A pilot-scale study, J. Hazard. Mater, 288, pp. 34-42, (2015) | |
dc.relation.references | Viruela A., Murgui M., Gomez-Gil T., Duran F., Robles A., Ruano M.V., Ferrer J., Seco A., Water resource recovery by means of microalgae cultivation in outdoor photobioreactors using the effluent from an anaerobic membrane bioreactor fed with pre-treated sewage, Bioresour. Technol, 218, pp. 447-454, (2016) | |
dc.relation.references | Arias D.M., Uggetti E., Garcia-Galan M.J., Garcia J., Cultivation and selection of cyanobacteria in a closed photobioreactor used for secondary effluent and digestate treatment, Sci. Total. Environ, 587–588, pp. 157-167, (2017) | |
dc.relation.references | Arias D.M., Uggetti E., Garcia-Galan M.J., Garcia J., Nutrients and biomass dynamics in photo-sequencing batch reactors treating wastewater with high nutrients loadings, Ecol. Eng, 119, pp. 35-44, (2018) | |
dc.relation.references | Arias D.M., Rueda E., Garcia-Galan M.J., Uggetti E., Garcia J., Selection of cyanobacteria over green algae in a photo-sequencing batch bioreactor fed with wastewater, Sci. Total. Environ, 653, pp. 485-495, (2019) | |
dc.relation.references | Vassalle L., Sunyer-Caldu A., Diaz-Cruz M.S., Arashiro L.T., Ferrer I., Garfi M., Garcia-Galan M.J., Behavior of UV Filters, UV Blockers and Pharmaceuticals in High Rate Algal Ponds Treating Urban Wastewater, Water, 12, (2020) | |
dc.relation.references | Sanchez-Sandoval D.S., Gonzalez-Ortega O., Vazquez-Martinez J., Garcia de la Cruz R.F., Soria-Guerra R.E., Diclofenac removal by the microalgae species Chlorella vulgaris, Nannochloropsis oculata, Scenedesmus acutus, and Scenedesmus obliquus, 3 Biotech, 12, (2022) | |
dc.relation.references | Othman F.S., Yuzir A., Mohamad S.E., Iwamoto K., Abdullah N., Shimizu K., Hermana J., Enhanced cultivation and lipid production of isolated microalgae strains using municipal wastewater, Environ. Technol. Innov, 27, (2022) | |
dc.relation.references | Devi N.D., Sun X., Ding L., Goud V.V., Hu B., Mixotrophic growth regime of novel strain Scenedesmus sp. DDVG I in municipal wastewater for concomitant bioremediation and valorization of biomass, J. Clean. Prod, 365, (2022) | |
dc.relation.references | Sisman-Aydin G., Simsek K., Municipal Wastewater Effects on the Performance of Nutrient Removal, and Lipid, Carbohydrate, and Protein Productivity of Blue-Green Algae Chroococcus turgidus, Sustainability, 14, (2022) | |
dc.relation.references | Garcia-Martinez J.B., Contreras-Ropero J.E., Urbina-Suarez N.A., Lopez-Barrera G.L., Barajas-Solano A.F., Kafarov V., Barajas-Ferreira C., Ibarra-Mojica D.M., Zuorro A., A Simulation Analysis of a Microalgal-Production Plant for the Transformation of Inland-Fisheries Wastewater in Sustainable Feed, Water, 14, (2022) | |
dc.relation.references | Miranda A.M., Hernandez-Tenorio F., Ocampo D., Vargas G.J., Saez A.A., Trends on CO<sub>2</sub> Capture with Microalgae: A Bibliometric Analysis, Molecules, 27, (2022) | |
dc.relation.references | Documento Introductorio Del Pomca Río Negro, pp. 5-8, (2018) | |
dc.relation.references | Actualización POMCA Río Aburrá: Plan de Ordenación y Manejo de la Cuenca Hidrográfica/Corporación Autónoma Regional del Centro de Antioquia, Ministerio de Ambiente y Desarrollo Sostenible, (2018) | |
dc.relation.references | (2005) | |
dc.relation.references | RESOLUCIÓN JEFATURAL N° 0291. Lima, (2009) | |
dc.relation.references | Directiva del consejo 91/271/ CEE sobre tratamiento de aguas residuales urbanas, (1991) | |
dc.relation.references | CDPS GENERAL PERMIT COG590000, (2020) | |
dc.relation.references | Schellenberg T., Subramanian V., Ganeshan G., Tompkins D., Pradeep R., Wastewater Discharge Standards in the Evolving Context of Urban Sustainability—The Case of India, Front. Environ. Sci, 8, (2020) | |
dc.relation.references | Discharge Standard of Pollutants for Municipal Wastewater Treatment Plant (GB 18918-2002), (2003) | |
dc.relation.references | Ley 5/2002 Sobre Vertidos de Aguas Residuales Industriales en Sistemas púBlicos de Saneamiento, (2002) | |
dc.relation.references | Normas Para la Clasificacion y el Control de la Calidad de los Cuerpos de Agua y Vertidos o Efluentes Liquidos, (1995) | |
dc.relation.references | (2021) | |
dc.relation.references | Norma de Calidad Ambiental y de Descarga de Efluentes al Recurso Agua. Registro Oficial No. 387, no. 97, pp. 1–40, (2015) | |
dc.relation.references | (2019) | |
dc.relation.references | (2015) | |
dc.relation.references | (2018) | |
dc.relation.references | Estudio Nacional del Agua: Agua Superficial, (2010) | |
dc.relation.references | Sperling M., Lemos Chernicharo C.A., Biological Wastewater Treatment in Warm Climate Regions, 2, (2005) | |
dc.relation.references | Nasr F.A., Mikhaeil B., Treatment of domestic wastewater using conventional and baffled septic tanks, Environ. Technol, 34, pp. 2337-2343, (2013) | |
dc.relation.references | Serra A., Artal R., Garcia-Amoros J., Gomez E., Philippe L., Circular zero-residue process using microalgae for efficient water decontamination, biofuel production, and carbon dioxide fixation, Chem. Eng. J, 388, (2020) | |
dc.relation.references | Franceschini G., Slompo N.D.M., Rodrigues S.A., Sarnighausen V.C.R., Lucas Junior J., The efficiency of the economic septic tank in the treatment of domestic wastewater and black water in rural areas, Res. Soc. Dev, 10, (2021) | |
dc.relation.references | Maheepala S.S., Fuchigami S., Hatamoto M., Akashi T., Watari T., Yamaguchi T., Stable denitrification performance of a mesh rotating biological reactor treating municipal wastewater, Environ. Technol. Innov, 27, (2022) | |
dc.relation.references | Larrota S., Uribe Garcia L., Gomez Torres L., Zafra Mejia C., Análisis de la eficiencia de reactores UASB en una planta de tratamiento de aguas residuales municipals, DYNA, 86, pp. 319-326, (2019) | |
dc.relation.references | Ocampo E., Beltran V.V., Gomez E.A., Rios L.A., Ocampo D., Hydrothermal liquefaction process: Review and trends, Curr. Res. Green Sustain. Chem, 7, (2023) | |
dc.relation.references | Garcia-Gonzalez J., Sommerfeld M., Biofertilizer and biostimulant properties of the microalga Acutodesmus dimorphus, J. Appl. Phycol, 28, pp. 1051-1061, (2016) | |
dc.type.version | info:eu-repo/semantics/publishedVersion | |
dc.identifier.reponame | reponame:Repositorio Institucional Universidad de Medellín | |
dc.identifier.repourl | repourl:https://repository.udem.edu.co/ | |
dc.identifier.instname | instname:Universidad de Medellín | |