A policy-based multi-objective optimisation framework for residential distributed energy system design★

Distributed energy systems (DES) are increasingly being introduced as solutions to alleviate conventional energy system challenges related to energy security, climate change and increasing demands. From a technological and economic perspective, distributed energy resources are already becoming viabl...

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Main Authors: Wouters Carmen, Fraga Eric, James Adrian M.
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:Renewable Energy and Environmental Sustainability
Online Access:https://www.rees-journal.org/articles/rees/full_html/2017/01/rees170011s/rees170011s.html
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author Wouters Carmen
Fraga Eric
James Adrian M.
author_facet Wouters Carmen
Fraga Eric
James Adrian M.
author_sort Wouters Carmen
collection DOAJ
description Distributed energy systems (DES) are increasingly being introduced as solutions to alleviate conventional energy system challenges related to energy security, climate change and increasing demands. From a technological and economic perspective, distributed energy resources are already becoming viable. The question still remains as to how these technologies and practices can be “best” selected, sized and integrated within consumer areas. To aid decision-makers and enable widespread DES adoption, a strategic superstructure design framework is therefore still required that ensures balancing of multiple stakeholder interests and fits in with liberalised energy system objectives of competition, security of supply and sustainability. Such a design framework is presented in this work. An optimisation-based approach for the design of neighbourhood-based DES is developed that enables meeting their yearly electricity, heating and cooling needs by appropriately selecting, sizing and locating technologies and energy interactions. A pool of poly-generation and storage technologies is hereto considered combined with local energy sharing between participating prosumers through thermal pipeline design and microgrid operation, and, a bi-directional connection with the central distribution grid. A superstructure mixed-integer linear programming approach (MILP) is proposed to trade off three minimisation objectives in the design process: total annualised cost, annual CO2 emissions and electrical system unavailability, aligned with the three central energy system objectives. The developed model is applied on a small South Australian neighbourhood. The approach enables identifying “knee-point” neighbourhood energy system designs through Pareto trade-offs between objectives and serves to inform decision-makers about the impact of policy objectives on DES development strategies.
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spelling doaj.art-35fafc87a71f449888109c905b70ba642022-12-22T00:56:21ZengEDP SciencesRenewable Energy and Environmental Sustainability2493-94392017-01-012510.1051/rees/2017011rees170011sA policy-based multi-objective optimisation framework for residential distributed energy system design★Wouters Carmen0Fraga Eric1James Adrian M.2School of Energy and Resources, University College London (UCL)Centre for Process Systems Engineering, Department of Chemical Engineering, University College London (UCL)School of Energy and Resources, University College London (UCL)Distributed energy systems (DES) are increasingly being introduced as solutions to alleviate conventional energy system challenges related to energy security, climate change and increasing demands. From a technological and economic perspective, distributed energy resources are already becoming viable. The question still remains as to how these technologies and practices can be “best” selected, sized and integrated within consumer areas. To aid decision-makers and enable widespread DES adoption, a strategic superstructure design framework is therefore still required that ensures balancing of multiple stakeholder interests and fits in with liberalised energy system objectives of competition, security of supply and sustainability. Such a design framework is presented in this work. An optimisation-based approach for the design of neighbourhood-based DES is developed that enables meeting their yearly electricity, heating and cooling needs by appropriately selecting, sizing and locating technologies and energy interactions. A pool of poly-generation and storage technologies is hereto considered combined with local energy sharing between participating prosumers through thermal pipeline design and microgrid operation, and, a bi-directional connection with the central distribution grid. A superstructure mixed-integer linear programming approach (MILP) is proposed to trade off three minimisation objectives in the design process: total annualised cost, annual CO2 emissions and electrical system unavailability, aligned with the three central energy system objectives. The developed model is applied on a small South Australian neighbourhood. The approach enables identifying “knee-point” neighbourhood energy system designs through Pareto trade-offs between objectives and serves to inform decision-makers about the impact of policy objectives on DES development strategies.https://www.rees-journal.org/articles/rees/full_html/2017/01/rees170011s/rees170011s.html
spellingShingle Wouters Carmen
Fraga Eric
James Adrian M.
A policy-based multi-objective optimisation framework for residential distributed energy system design★
Renewable Energy and Environmental Sustainability
title A policy-based multi-objective optimisation framework for residential distributed energy system design★
title_full A policy-based multi-objective optimisation framework for residential distributed energy system design★
title_fullStr A policy-based multi-objective optimisation framework for residential distributed energy system design★
title_full_unstemmed A policy-based multi-objective optimisation framework for residential distributed energy system design★
title_short A policy-based multi-objective optimisation framework for residential distributed energy system design★
title_sort policy based multi objective optimisation framework for residential distributed energy system design★
url https://www.rees-journal.org/articles/rees/full_html/2017/01/rees170011s/rees170011s.html
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