Increasing the reliability of bioenergy parks utilizing agricultural waste feedstock under demand uncertainty

Bioenergy parks are multi-product industrial complexes that convert residual biomass from agro-food systems into valuable products such as biofuel and power. By utilizing waste from food production, such systems can mitigate competition for resources at the food-water-energy nexus. A bioenergy park...

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Main Authors: Benjamin, Michael Francis D., Andiappan, Viknesh, Lee, Jui Yuan, Tan, Raymond Girard R.
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Published: Animo Repository 2020
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/2257
https://animorepository.dlsu.edu.ph/context/faculty_research/article/3256/type/native/viewcontent
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-32562021-08-20T06:43:31Z Increasing the reliability of bioenergy parks utilizing agricultural waste feedstock under demand uncertainty Benjamin, Michael Francis D. Andiappan, Viknesh Lee, Jui Yuan Tan, Raymond Girard R. Bioenergy parks are multi-product industrial complexes that convert residual biomass from agro-food systems into valuable products such as biofuel and power. By utilizing waste from food production, such systems can mitigate competition for resources at the food-water-energy nexus. A bioenergy park consists of individual plants that are integrated with each other to improve material and energy efficiency and attain more sustainable operations. However, such advantages can be negated by vulnerability of integrated systems to cascading failures triggered by equipment failure or feedstock supply perturbations. Seasonal variations in the demand may also cause reductions in throughput compared to normal production levels, resulting in similar cascading disruptions. The reliability of bioenergy parks can be enhanced by having redundancy measures. However, as this approach is subject to budget constraints, it is important to identify the most critical plant in the bioenergy park. This key step economizes redundancy allocation and avoids overdesigning system capacities. This work applied this integrated framework to address criticality of process units or plants in bioenergy parks, considering demand uncertainties. The method increases overall reliability of bioenergy parks by allocating standby inventory or supply. Two bioenergy parks are analyzed as case studies to demonstrate the integrated method. © 2020 Elsevier Ltd 2020-10-01T07:00:00Z text text/html https://animorepository.dlsu.edu.ph/faculty_research/2257 https://animorepository.dlsu.edu.ph/context/faculty_research/article/3256/type/native/viewcontent Faculty Research Work Animo Repository Energy parks Agricultural wastes as fuel 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
Agricultural wastes as fuel
Chemical Engineering
spellingShingle Energy parks
Agricultural wastes as fuel
Chemical Engineering
Benjamin, Michael Francis D.
Andiappan, Viknesh
Lee, Jui Yuan
Tan, Raymond Girard R.
Increasing the reliability of bioenergy parks utilizing agricultural waste feedstock under demand uncertainty
description Bioenergy parks are multi-product industrial complexes that convert residual biomass from agro-food systems into valuable products such as biofuel and power. By utilizing waste from food production, such systems can mitigate competition for resources at the food-water-energy nexus. A bioenergy park consists of individual plants that are integrated with each other to improve material and energy efficiency and attain more sustainable operations. However, such advantages can be negated by vulnerability of integrated systems to cascading failures triggered by equipment failure or feedstock supply perturbations. Seasonal variations in the demand may also cause reductions in throughput compared to normal production levels, resulting in similar cascading disruptions. The reliability of bioenergy parks can be enhanced by having redundancy measures. However, as this approach is subject to budget constraints, it is important to identify the most critical plant in the bioenergy park. This key step economizes redundancy allocation and avoids overdesigning system capacities. This work applied this integrated framework to address criticality of process units or plants in bioenergy parks, considering demand uncertainties. The method increases overall reliability of bioenergy parks by allocating standby inventory or supply. Two bioenergy parks are analyzed as case studies to demonstrate the integrated method. © 2020 Elsevier Ltd
format text
author Benjamin, Michael Francis D.
Andiappan, Viknesh
Lee, Jui Yuan
Tan, Raymond Girard R.
author_facet Benjamin, Michael Francis D.
Andiappan, Viknesh
Lee, Jui Yuan
Tan, Raymond Girard R.
author_sort Benjamin, Michael Francis D.
title Increasing the reliability of bioenergy parks utilizing agricultural waste feedstock under demand uncertainty
title_short Increasing the reliability of bioenergy parks utilizing agricultural waste feedstock under demand uncertainty
title_full Increasing the reliability of bioenergy parks utilizing agricultural waste feedstock under demand uncertainty
title_fullStr Increasing the reliability of bioenergy parks utilizing agricultural waste feedstock under demand uncertainty
title_full_unstemmed Increasing the reliability of bioenergy parks utilizing agricultural waste feedstock under demand uncertainty
title_sort increasing the reliability of bioenergy parks utilizing agricultural waste feedstock under demand uncertainty
publisher Animo Repository
publishDate 2020
url https://animorepository.dlsu.edu.ph/faculty_research/2257
https://animorepository.dlsu.edu.ph/context/faculty_research/article/3256/type/native/viewcontent
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