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Framework for scaling-up extraction processes in nutraceutical beverages: A simulation, techno-economic, and environmental analysis approach

  • Yris Gonzalez
  • , Fernando Zea
  • , Alexander Espinoza
  • , Daniela Galatro*
  • , Glenda Pilozo
  • , Wilfredo Angulo
  • , Manuel Rodríguez Hernández
  • , Jesus Urrucsaca
  • , Marcela Muzzio
  • , Michael Rendón-Morán
  • , Patricia Manzano
  • *Autor correspondiente de este trabajo

Producción científica: RevistaArtículorevisión exhaustiva

Resumen

The nutraceutical beverages market has increased in recent years, motivated by the increasing trend of consumers choosing food and beverages beneficial to health, mostly after the COVID-19 pandemic. Several researchers have proposed different formulations, where the combination of plants has been tested at the laboratory and pilot scales to maximize the desirable features of the beverages, including antioxidant capacity, anticarcinogens, and anti-inflammatory properties. Developing these products requires scaling-up from these scales to the industry one and, hence, identifying the criteria and/or parameters affecting process yield due to the transport phenomena associated with the scale increment. This work proposes a framework for scaling up solid-liquid extraction in a nutraceutical beverage process using available pilot plant data, combining brute-force and empirical scaling approaches. This framework provides an alternative for industries that have acquired equipment without considering the principles of similarity between the larger scale and the laboratory stage. Operating conditions are tuned to reach the product quality at the pilot level and the maximum beverage's antioxidant capacity. A techno-economic analysis of the production process and an environmental evaluation were performed, providing the basis for an effective scaling-up to the industry level. The scaling-up proved to be feasible, as the net present value of the process is $2018,000 with a payback time of 4.83 years; the major source of solid waste is the raw materials with a carbon footprint less than 0.205 MT eCO2 due this process operates with temperatures lower than 100 °C. The circular economy indicators in this project were circular material usage rate and Waste Stream Recycling Rate. The Circular Material Usage Rate ranged from 16.7 % to 66.7 % depending on the composition of the cocoa husk in the raw material, and the Waste Stream Recycling Rate (%) ranged from 4.4 % to 5 % destined for composting development. The framework is designed to be applicable to other food production processes that encounter equipment constraints. It facilitates the evaluation of process yield and enables the simulation and analysis of economic profitability and environmental impact using circular economy indicators at an industrial/commercial scale.

Idioma originalInglés
Páginas (desde-hasta)544-553
Número de páginas10
PublicaciónFood and Bioproducts Processing
Volumen147
DOI
EstadoPublicada - sept 2024
Publicado de forma externa

Nota bibliográfica

Publisher Copyright:
© 2024 The Authors

Financiación

The authors would like to thank ESPOL (Escuela Superior Politécnica del Litoral), as well as the German-Ecuadorian Research Cooperation Program on Biodiversity and Climate Change (CoCiBio), organized by the Deutsche Gesellschaft für Internationale Zusammenarbeit (GIZ), German Academic Exchange Service (DAAD), National Institute of Biodiversity (INABIO), and Ecuadorian Ministry of Environment, Water and Ecological Transition (MAATE), as part the project “Production of a Beverage with Nutraceutical Properties and a High Potential for the Prevention of Metabolic Syndrome”.

Financiadores
Deutscher Akademischer Austauschdienst
Ministerio del Ambiente, Agua y Transición Ecológica
Escuela Superior Politécnica del Litoral
INABIO
Deutsche Gesellschaft für Internationale Zusammenarbeit
South African National Biodiversity Institute

    ODS de las Naciones Unidas

    Este resultado contribuye a los siguientes Objetivos de Desarrollo Sostenible

    1. ODS 8: Trabajo decente y crecimiento económico
      ODS 8: Trabajo decente y crecimiento económico
    2. ODS 9: Industria, innovación e infraestructura
      ODS 9: Industria, innovación e infraestructura
    3. ODS 11: Ciudades y comunidades sostenibles
      ODS 11: Ciudades y comunidades sostenibles
    4. ODS 12: Producción y consumo responsables
      ODS 12: Producción y consumo responsables
    5. ODS 13: Acción por el clima
      ODS 13: Acción por el clima

    Base de Datos Indexada

    • SCOPUS

    Cuartil Publicación

    • NAQ1

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