An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas

In this paper, a combined biomass-geothermal system, intended to supply heat in low enthalpy areas with an extremely cold climate, is optimized based on a nonlinear optimization methodology. A Multiple Criteria Decision-Making technique is coupled with a two-step optimization to achieve the most exp...

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Main Authors: Rezaei, Masoud, Sameti, Mohammad, Nasiri, Fuzhan
Format: Article in Journal/Newspaper
Language:English
Published: Elsevier Limited 2021
Subjects:
Online Access:https://mural.maynoothuniversity.ie/18600/
https://mural.maynoothuniversity.ie/18600/1/MohammedSametiHybrid2021.pdf
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spelling ftunivmaynooth:oai:mural.maynoothuniversity.ie:18600 2024-06-23T07:54:25+00:00 An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas Rezaei, Masoud Sameti, Mohammad Nasiri, Fuzhan 2021 text https://mural.maynoothuniversity.ie/18600/ https://mural.maynoothuniversity.ie/18600/1/MohammedSametiHybrid2021.pdf en eng Elsevier Limited https://mural.maynoothuniversity.ie/18600/1/MohammedSametiHybrid2021.pdf Rezaei, Masoud and Sameti, Mohammad and Nasiri, Fuzhan (2021) An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas. Energy and Climate Change, 2. p. 100040. ISSN 2666-2787 Article PeerReviewed 2021 ftunivmaynooth 2024-06-04T23:59:50Z In this paper, a combined biomass-geothermal system, intended to supply heat in low enthalpy areas with an extremely cold climate, is optimized based on a nonlinear optimization methodology. A Multiple Criteria Decision-Making technique is coupled with a two-step optimization to achieve the most exploitable energy with the least pollution and cost possible. Three nonlinear objective functions for optimization with three criteria for decision-making were used to minimize the heat generation cost and pollution for a modeled building in Kuujjuaq, Canada. The biomass-geothermal system is split into two parts, surface, and subsurface parts. Twelve scenarios, including three wood pellet types, in four distance ranges from pellet mills, are first defined. Then, via modeling a building for heat demand analysis, the required heat is yielded. Afterward, in the first step of optimization, the cost and pollution functions for surface parts are developed and optimized using the genetic algorithm and screened by the MCDM technique, called TOPSIS, to size the biomass and geothermal subsystems. In the second step, using the sizing from the first step as a constraint, the cost of the geothermal ground heat exchanger is minimized. Twelve scenarios are optimally configured in this way with minimum cost and pollution in relation to operational parameters, such as utilization time and rated powers. The research proposes a methodology that sizes the biomass geothermal (bio-geo) system and can be extended to other technologies, such as turbines, energy storages, or fuel. Furthermore. It provides a correlation between cost and heat generation from biomass-geothermal systems for Kuujjuaq, Canada, and twelve optimal scenarios with system operating parameters. A basis for system sizing and system selection for baseload and peak demand shaving is also considered. Geothermal- and biomass-rated capacities vary with scenarios from 44% to 56% of the total rated capacity. Article in Journal/Newspaper Kuujjuaq Maynooth University ePrints and eTheses Archive (National University of Ireland) Canada Kuujjuaq ENVELOPE(-68.398,-68.398,58.100,58.100)
institution Open Polar
collection Maynooth University ePrints and eTheses Archive (National University of Ireland)
op_collection_id ftunivmaynooth
language English
description In this paper, a combined biomass-geothermal system, intended to supply heat in low enthalpy areas with an extremely cold climate, is optimized based on a nonlinear optimization methodology. A Multiple Criteria Decision-Making technique is coupled with a two-step optimization to achieve the most exploitable energy with the least pollution and cost possible. Three nonlinear objective functions for optimization with three criteria for decision-making were used to minimize the heat generation cost and pollution for a modeled building in Kuujjuaq, Canada. The biomass-geothermal system is split into two parts, surface, and subsurface parts. Twelve scenarios, including three wood pellet types, in four distance ranges from pellet mills, are first defined. Then, via modeling a building for heat demand analysis, the required heat is yielded. Afterward, in the first step of optimization, the cost and pollution functions for surface parts are developed and optimized using the genetic algorithm and screened by the MCDM technique, called TOPSIS, to size the biomass and geothermal subsystems. In the second step, using the sizing from the first step as a constraint, the cost of the geothermal ground heat exchanger is minimized. Twelve scenarios are optimally configured in this way with minimum cost and pollution in relation to operational parameters, such as utilization time and rated powers. The research proposes a methodology that sizes the biomass geothermal (bio-geo) system and can be extended to other technologies, such as turbines, energy storages, or fuel. Furthermore. It provides a correlation between cost and heat generation from biomass-geothermal systems for Kuujjuaq, Canada, and twelve optimal scenarios with system operating parameters. A basis for system sizing and system selection for baseload and peak demand shaving is also considered. Geothermal- and biomass-rated capacities vary with scenarios from 44% to 56% of the total rated capacity.
format Article in Journal/Newspaper
author Rezaei, Masoud
Sameti, Mohammad
Nasiri, Fuzhan
spellingShingle Rezaei, Masoud
Sameti, Mohammad
Nasiri, Fuzhan
An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas
author_facet Rezaei, Masoud
Sameti, Mohammad
Nasiri, Fuzhan
author_sort Rezaei, Masoud
title An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas
title_short An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas
title_full An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas
title_fullStr An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas
title_full_unstemmed An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas
title_sort enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas
publisher Elsevier Limited
publishDate 2021
url https://mural.maynoothuniversity.ie/18600/
https://mural.maynoothuniversity.ie/18600/1/MohammedSametiHybrid2021.pdf
long_lat ENVELOPE(-68.398,-68.398,58.100,58.100)
geographic Canada
Kuujjuaq
geographic_facet Canada
Kuujjuaq
genre Kuujjuaq
genre_facet Kuujjuaq
op_relation https://mural.maynoothuniversity.ie/18600/1/MohammedSametiHybrid2021.pdf
Rezaei, Masoud and Sameti, Mohammad and Nasiri, Fuzhan (2021) An enviro-economic optimization of a hybrid energy system from biomass and geothermal resources for low-enthalpy areas. Energy and Climate Change, 2. p. 100040. ISSN 2666-2787
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