Analyzing the disruption resilience of microalgal multi-functional bioenergy systems using dynamic inoperability input-output modeling

Bioenergy parks are low-carbon industrial symbiosis (IS) networks that are also characterized as having a higher resource efficiency and economic sustainability compared to stand-alone bioenergy plants. A microalgal multi-functional bioenergy system (MMBS) is an example of such network, which is spe...

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Main Authors: Benjamin, Michael F., Ubando, Aristotle T., Razon, Luis, Tan, Raymond Girard R.
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Published: Animo Repository 2015
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/282
https://animorepository.dlsu.edu.ph/cgi/viewcontent.cgi?article=1281&context=faculty_research
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-12812022-08-18T08:07:41Z Analyzing the disruption resilience of microalgal multi-functional bioenergy systems using dynamic inoperability input-output modeling Benjamin, Michael F. Ubando, Aristotle T. Razon, Luis Tan, Raymond Girard R. Bioenergy parks are low-carbon industrial symbiosis (IS) networks that are also characterized as having a higher resource efficiency and economic sustainability compared to stand-alone bioenergy plants. A microalgal multi-functional bioenergy system (MMBS) is an example of such network, which is specifically developed for the sustainability of algal biofuels. However, such highly integrated energy system is inherently vulnerable to capacity disruptions resulting in a less resilient network. The strong interdependence between component plants in a bioenergy park decreases system resilience due to cascading failure effect. The consequence of such disruption is even greater if the critical components are damaged. Resilience is defined in this work as the ability of an energy system to withstand a disruption and be able to recover to normal operating conditions. Most risk analysis focus on the vulnerability or robustness (i.e., static resilience) of bioenergy parks and lack significant discussions on the recovery rates aspect (i.e., dynamic resilience). In this work, a disruption resilience framework is developed to analyze the resilience of bioenergy parks against an array of capacity disruption scenarios. This study is primarily focused on the effect of single-plant disruption scenarios. The proposed framework is derived from the concepts of dynamic inoperability input-output modelling (DIIM) used in economic systems. The method shows that the resilience of the bioenergy park is influenced by the recovery time of bioenergy plants and their degree of connectivity within the network. The insights from this work can be used for planning and developing more disruption-resilient bioenergy parks. An MMBS case study is presented to demonstrate the applicability of the resilience framework. Copyright © 2015, AIDIC Servizi S.r.l.,. 2015-10-01T07:00:00Z text application/pdf https://animorepository.dlsu.edu.ph/faculty_research/282 https://animorepository.dlsu.edu.ph/cgi/viewcontent.cgi?article=1281&context=faculty_research Faculty Research Work Animo Repository Energy parks Algal biofuels Biomass energy Chemical Engineering
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 Energy parks
Algal biofuels
Biomass energy
Chemical Engineering
spellingShingle Energy parks
Algal biofuels
Biomass energy
Chemical Engineering
Benjamin, Michael F.
Ubando, Aristotle T.
Razon, Luis
Tan, Raymond Girard R.
Analyzing the disruption resilience of microalgal multi-functional bioenergy systems using dynamic inoperability input-output modeling
description Bioenergy parks are low-carbon industrial symbiosis (IS) networks that are also characterized as having a higher resource efficiency and economic sustainability compared to stand-alone bioenergy plants. A microalgal multi-functional bioenergy system (MMBS) is an example of such network, which is specifically developed for the sustainability of algal biofuels. However, such highly integrated energy system is inherently vulnerable to capacity disruptions resulting in a less resilient network. The strong interdependence between component plants in a bioenergy park decreases system resilience due to cascading failure effect. The consequence of such disruption is even greater if the critical components are damaged. Resilience is defined in this work as the ability of an energy system to withstand a disruption and be able to recover to normal operating conditions. Most risk analysis focus on the vulnerability or robustness (i.e., static resilience) of bioenergy parks and lack significant discussions on the recovery rates aspect (i.e., dynamic resilience). In this work, a disruption resilience framework is developed to analyze the resilience of bioenergy parks against an array of capacity disruption scenarios. This study is primarily focused on the effect of single-plant disruption scenarios. The proposed framework is derived from the concepts of dynamic inoperability input-output modelling (DIIM) used in economic systems. The method shows that the resilience of the bioenergy park is influenced by the recovery time of bioenergy plants and their degree of connectivity within the network. The insights from this work can be used for planning and developing more disruption-resilient bioenergy parks. An MMBS case study is presented to demonstrate the applicability of the resilience framework. Copyright © 2015, AIDIC Servizi S.r.l.,.
format text
author Benjamin, Michael F.
Ubando, Aristotle T.
Razon, Luis
Tan, Raymond Girard R.
author_facet Benjamin, Michael F.
Ubando, Aristotle T.
Razon, Luis
Tan, Raymond Girard R.
author_sort Benjamin, Michael F.
title Analyzing the disruption resilience of microalgal multi-functional bioenergy systems using dynamic inoperability input-output modeling
title_short Analyzing the disruption resilience of microalgal multi-functional bioenergy systems using dynamic inoperability input-output modeling
title_full Analyzing the disruption resilience of microalgal multi-functional bioenergy systems using dynamic inoperability input-output modeling
title_fullStr Analyzing the disruption resilience of microalgal multi-functional bioenergy systems using dynamic inoperability input-output modeling
title_full_unstemmed Analyzing the disruption resilience of microalgal multi-functional bioenergy systems using dynamic inoperability input-output modeling
title_sort analyzing the disruption resilience of microalgal multi-functional bioenergy systems using dynamic inoperability input-output modeling
publisher Animo Repository
publishDate 2015
url https://animorepository.dlsu.edu.ph/faculty_research/282
https://animorepository.dlsu.edu.ph/cgi/viewcontent.cgi?article=1281&context=faculty_research
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