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dc.contributor.authorOrtiz Ruiz, Antonio
dc.contributor.authorDíez Montero, Rubén
dc.contributor.authorGarcía, Joan
dc.contributor.authorKhalil, Nadeem
dc.contributor.authorUggetti, Enrica
dc.date.accessioned2023-07-11T06:23:03Z
dc.date.available2023-07-11T06:23:03Z
dc.date.issued2022
dc.identifier.citationOrtiz Ruiz, A., Diez Montero, R., Garcia, J., Khalil, N. y Uggetti, E. (2022). Advanced biokinetic and hydrodynamic modelling to support and optimize the design of full-scale high rate algal ponds. Computational and Structural Biotechnology Journal, 20, 386-398. https://doi.org/10.1016/j.csbj.2021.12.034es
dc.identifier.issn2001-0370
dc.identifier.urihttp://hdl.handle.net/20.500.12251/2977
dc.description.abstractHigh rate algal ponds (HRAP) are known for their suitability to treat wastewater and to produce microalgal biomass, which can be converted into bioproducts. However, full-scale application of HRAP is still limited to few cases, and design procedures are not consolidated or standardized. In this study, a demonstrative-scale HRAP system for secondary wastewater treatment to be implemented in India (treatment capacity of 50 m(3).d(-1)) has been designed combining conventional dimensioning techniques and advanced modelling tools. The objective of the study was to assist, verify and optimize the conventional dimensioning of the secondary HRAP by means of simulations predicting the behaviour of the system in the specific local conditions under different configurations and operational strategies. Biokinetic modelling and hydrodynamic analysis using Computational Fluid Dynamics (CFD) were carried out. The simulations performed with the biokinetic model showed that the optimal hydraulic retention time to enhance nutrient removal and biomass production is 4 days. For the hydrodynamic modelling, a 3D model of the HRAP was built to simulate the hydrodynamic behaviour of 36 different designs. Simulations allowed quantifying the presence of low velocity zones as well as the land use efficiency of the different designs in terms of the useful area vs. the total occupied area. Two baffles and tear-shapes with a diameter equal to 1/4 of the channel width was the most efficient configuration. Moreover, a technical-economic assessment of the system was carried out, resulting in an investment cost of 483 (sic) per population equivalent and an operational cost of 0.19 (sic) per m(3) of treated wastewater. (C) 2022 The Authors. Published by Elsevier B.V. on behalf of Research Network of Computational and Structural Biotechnology.en
dc.language.isoenges
dc.publisherELSEVIERes
dc.titleAdvanced biokinetic and hydrodynamic modelling to support and optimize the design of full-scale high rate algal pondsen
dc.typearticlees
dc.identifier.doi10.1016/j.csbj.2021.12.034
dc.journal.titleComputational and Structural Biotechnology Journal
dc.page.initial386es
dc.page.final398es
dc.subject.keywordEstanque de algas de alta tasa (HRAP)es
dc.subject.keywordAguas residualeses
dc.subject.keywordDepuradoraes
dc.subject.keywordMaterial sosteniblees
dc.subject.keywordIndiaes
dc.subject.keywordIndicadores ambientaleses
dc.subject.keywordInstalación industriales
dc.subject.keywordInfraestructuras hidráulicases
dc.subject.unesco3308.04 Ingeniería de la Contaminaciónes
dc.subject.unesco3308.10 Tecnología de Aguas Residualeses
dc.subject.unesco3308.07 Eliminación de Residuoses
dc.volume.number20


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