Multi-objective optimal synthesis of algal biorefineries toward a sustainable circular bioeconomy

Production of biodiesel from renewable resources like microalgae biomass presents a potential for reduction of greenhouse gas emissions and fossil fuel energy consumption. The integration of processes from other industries have been implemented in microalgal biorefineries to increase economic sustai...

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Main Authors: Solis, C. A., Mayol, Andres Philip, San Juan, Jayne Lois G., Ubando, Aristotle T., Culaba, Alvin B.
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/3693
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-46952022-07-11T06:22:29Z Multi-objective optimal synthesis of algal biorefineries toward a sustainable circular bioeconomy Solis, C. A. Mayol, Andres Philip San Juan, Jayne Lois G. Ubando, Aristotle T. Culaba, Alvin B. Production of biodiesel from renewable resources like microalgae biomass presents a potential for reduction of greenhouse gas emissions and fossil fuel energy consumption. The integration of processes from other industries have been implemented in microalgal biorefineries to increase economic sustainability by co-producing several high-value algal-based products. Agro-industrial processes have the potential to be incorporated into the biorefinery because it requires input material flows from other biorefinery process units to cultivate and sell crops for an additional source of revenue and increased carbon sequestration, while generating wastewater that may be used as a cultivation medium for algae or as a resource for other biorefinery processes. Circular bioeconomy, an extension of the circular economy ideology, has the goal of achieving economic and environmental sustainability through maximizing the dedicated recirculation of resource flows, and minimizing waste generation and end-of-life disposal. However, existing modelling studies have not explored this opportunity; previous studies have not considered that resource functionality runs out with repeated recirculation and reuse as it reaches its end of life. In this work, a novel multi-objective optimization model is developed to design and manage closed-loop algal biorefineries integrating agro-industrial processes that captures the effect of recirculation on resource material viability and end-of-life environmental impact. A case study is solved as proof of concept and to illustrate the design methodology, optimal solutions based on economic and environmental performance are analyzed. The results of the case study validate the initial hypothesis that there is a conflict between the economic and environmental objectives since the decision for biofuel production varied for each single objective. With the multi objective model, a balance between the two objectives was found. The results of the optimization model can be applied in the design of an algal biorefinery along with the decisions relating to production quantities incorporating a zero waste outlook. © 2020 Institute of Physics Publishing. All rights reserved. 2020-04-06T07:00:00Z text text/html https://animorepository.dlsu.edu.ph/faculty_research/3693 info:doi/10.1088/1755-1315/463/1/012051 https://animorepository.dlsu.edu.ph/context/faculty_research/article/4695/type/native/viewcontent/012051.html Faculty Research Work Animo Repository Algal biofuels—Refining Sustainable development Greenhouse gas mitigation Fossil fuels Sewage disposal Energy Systems
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
topic Algal biofuels—Refining
Sustainable development
Greenhouse gas mitigation
Fossil fuels
Sewage disposal
Energy Systems
spellingShingle Algal biofuels—Refining
Sustainable development
Greenhouse gas mitigation
Fossil fuels
Sewage disposal
Energy Systems
Solis, C. A.
Mayol, Andres Philip
San Juan, Jayne Lois G.
Ubando, Aristotle T.
Culaba, Alvin B.
Multi-objective optimal synthesis of algal biorefineries toward a sustainable circular bioeconomy
description Production of biodiesel from renewable resources like microalgae biomass presents a potential for reduction of greenhouse gas emissions and fossil fuel energy consumption. The integration of processes from other industries have been implemented in microalgal biorefineries to increase economic sustainability by co-producing several high-value algal-based products. Agro-industrial processes have the potential to be incorporated into the biorefinery because it requires input material flows from other biorefinery process units to cultivate and sell crops for an additional source of revenue and increased carbon sequestration, while generating wastewater that may be used as a cultivation medium for algae or as a resource for other biorefinery processes. Circular bioeconomy, an extension of the circular economy ideology, has the goal of achieving economic and environmental sustainability through maximizing the dedicated recirculation of resource flows, and minimizing waste generation and end-of-life disposal. However, existing modelling studies have not explored this opportunity; previous studies have not considered that resource functionality runs out with repeated recirculation and reuse as it reaches its end of life. In this work, a novel multi-objective optimization model is developed to design and manage closed-loop algal biorefineries integrating agro-industrial processes that captures the effect of recirculation on resource material viability and end-of-life environmental impact. A case study is solved as proof of concept and to illustrate the design methodology, optimal solutions based on economic and environmental performance are analyzed. The results of the case study validate the initial hypothesis that there is a conflict between the economic and environmental objectives since the decision for biofuel production varied for each single objective. With the multi objective model, a balance between the two objectives was found. The results of the optimization model can be applied in the design of an algal biorefinery along with the decisions relating to production quantities incorporating a zero waste outlook. © 2020 Institute of Physics Publishing. All rights reserved.
format text
author Solis, C. A.
Mayol, Andres Philip
San Juan, Jayne Lois G.
Ubando, Aristotle T.
Culaba, Alvin B.
author_facet Solis, C. A.
Mayol, Andres Philip
San Juan, Jayne Lois G.
Ubando, Aristotle T.
Culaba, Alvin B.
author_sort Solis, C. A.
title Multi-objective optimal synthesis of algal biorefineries toward a sustainable circular bioeconomy
title_short Multi-objective optimal synthesis of algal biorefineries toward a sustainable circular bioeconomy
title_full Multi-objective optimal synthesis of algal biorefineries toward a sustainable circular bioeconomy
title_fullStr Multi-objective optimal synthesis of algal biorefineries toward a sustainable circular bioeconomy
title_full_unstemmed Multi-objective optimal synthesis of algal biorefineries toward a sustainable circular bioeconomy
title_sort multi-objective optimal synthesis of algal biorefineries toward a sustainable circular bioeconomy
publisher Animo Repository
publishDate 2020
url https://animorepository.dlsu.edu.ph/faculty_research/3693
https://animorepository.dlsu.edu.ph/context/faculty_research/article/4695/type/native/viewcontent/012051.html
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