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Comparative life cycle assessment of conventional and novel microalgae production systems and environmental impact mitigation in urban-industrial symbiosis.
Pechsiri, Joseph Santhi; Thomas, Jean-Baptiste E; Bahraoui, Naoufel El; Fernandez, Francisco Gabriel Acien; Chaouki, Jamal; Chidami, Saad; Tinoco, Rodrigo Rivera; Martin, Jose Pena; Gomez, Cintia; Combe, Michel; Gröndahl, Fredrik.
Afiliação
  • Pechsiri JS; Water and Environmental Engineering, Department of Sustainable Development, Environmental Science and Engineering (SEED), KTH Royal Institute of Technology KTH, Teknikringen 10b, 114 28 Stockholm, Sweden. Electronic address: joseph.pechsiri@slu.se.
  • Thomas JE; Water and Environmental Engineering, Department of Sustainable Development, Environmental Science and Engineering (SEED), KTH Royal Institute of Technology KTH, Teknikringen 10b, 114 28 Stockholm, Sweden. Electronic address: jean-baptiste.thomas@abe.kth.se.
  • Bahraoui NE; Center for Energy Efficiency and Systems, Mines ParisTech, 60 Bd Saint-Michel, 75272 Paris, France; Setec Energie Environnement, 42-52 Quai de la Rapée, 75012 Paris, France.
  • Fernandez FGA; Department of Chemical Engineering, University of Almeria, Cañda San Urbano s/N, 04120 Almeria, Spain. Electronic address: facien@ual.es.
  • Chaouki J; Polytechnique Montréal, 2500 Chem. de Polytechnique, Montréal, QC H3T 1J4, Canada. Electronic address: jamal.chaouki@polymtl.ca.
  • Chidami S; Polytechnique Montréal, 2500 Chem. de Polytechnique, Montréal, QC H3T 1J4, Canada.
  • Tinoco RR; Center for Energy Efficiency and Systems, Mines ParisTech, 60 Bd Saint-Michel, 75272 Paris, France.
  • Martin JP; Department of Chemical Engineering, University of Almeria, Cañda San Urbano s/N, 04120 Almeria, Spain.
  • Gomez C; Department of Chemical Engineering, University of Almeria, Cañda San Urbano s/N, 04120 Almeria, Spain.
  • Combe M; Setec Energie Environnement, 42-52 Quai de la Rapée, 75012 Paris, France. Electronic address: michel.combe@setec.com.
  • Gröndahl F; Water and Environmental Engineering, Department of Sustainable Development, Environmental Science and Engineering (SEED), KTH Royal Institute of Technology KTH, Teknikringen 10b, 114 28 Stockholm, Sweden. Electronic address: fgro@kth.se.
Sci Total Environ ; 854: 158445, 2023 Jan 01.
Article em En | MEDLINE | ID: mdl-36058335
ABSTRACT
The versatility of microalgae biomass as candidates for various products and bioremediation needs motivates interests towards design and implementation of novel microalgae bioreactors. Conventional open-reactors are reliant on large quantities of sunlight and space while yields are constrained by outdoor environment conditions. Conversely, closed-reactor systems like bubble columns reduces these constrains on microalgae growth while occupying far less space at the expense of high energy demands, notably from lighting systems. A novel patented closed reactor design has recently been proposed that improves the bubble column concept with an efficient and effective lighting system. The present study uses Life Cycle Assessment approach to compare the environmental performance of conventional reactors and the proposed internally luminated novel closed reactor design, expressing impacts per kg biostimulant for the Scenedesmus almeriensis harvest from such units. All performance data was collected from a pilot facility in Almeria, Spain. Urban-industrial symbiosis scenarios are also portrayed in the study using wastewater and incinerator flue gas. Results show that under synthetic nutrient and carbon inputs in Spanish pilot operations, the cumulative energy demand for the novel photobioreactors is similar to conventional vertically-stacked horizon bioreactors but are substantially more demanding than conventional open reactors. However, when leveraging renewable energy sources and the photosynthesis process to consume wastestreams in urban-industrial symbiosis scenarios, the novel photobioreactor was able to achieve up to 80 % improvements in several impact categories e.g. eutrophication and climate change. Impact mitigation credits per kg dwt biomass across all energy scenarios in symbiosis amount to ≈1.8 kg CO2eq and ≈0.09 kg PO4 eq. This highlights that such closed and internally illuminated photobioreactors can be competitive with conventional reactors, and have potential to harness photosynthesis to reduce environmental burdens in an urban-industrial symbiosis setting. Possible economies of scale and the associated potential gains in efficiencies are further discussed.
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Texto completo: 1 Temas: ECOS / Aspectos_gerais Bases de dados: MEDLINE Assunto principal: Microalgas Limite: Animals Idioma: En Revista: Sci Total Environ Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Temas: ECOS / Aspectos_gerais Bases de dados: MEDLINE Assunto principal: Microalgas Limite: Animals Idioma: En Revista: Sci Total Environ Ano de publicação: 2023 Tipo de documento: Article