Synergizing renewable energy sources in building-integrated hybrid energy systems via niche-ant colony optimization

The rapid advancement of Building-Integrated Hybrid Energy Systems (BIHES), characterized by renewable energy sources with variable generation patterns, presents significant challenges for effective integration and utilization. This paper introduces an optimal economic dispatch strategy for commerci...

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Published in:CASE STUDIES IN THERMAL ENGINEERING
Main Authors: Xu, Mengyi; Tian, Congxiang; Abdalla, Ahmed N.
Format: Article
Language:English
Published: ELSEVIER 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001285963700001
author Xu
Mengyi; Tian
Congxiang; Abdalla
Ahmed N.
spellingShingle Xu
Mengyi; Tian
Congxiang; Abdalla
Ahmed N.
Synergizing renewable energy sources in building-integrated hybrid energy systems via niche-ant colony optimization
Thermodynamics
author_facet Xu
Mengyi; Tian
Congxiang; Abdalla
Ahmed N.
author_sort Xu
spelling Xu, Mengyi; Tian, Congxiang; Abdalla, Ahmed N.
Synergizing renewable energy sources in building-integrated hybrid energy systems via niche-ant colony optimization
CASE STUDIES IN THERMAL ENGINEERING
English
Article
The rapid advancement of Building-Integrated Hybrid Energy Systems (BIHES), characterized by renewable energy sources with variable generation patterns, presents significant challenges for effective integration and utilization. This paper introduces an optimal economic dispatch strategy for commercial BIHES using a Niche-Ant Colony Optimization (NACO) Algorithm. BIHES integrates renewable sources such as 200 kW photovoltaic panels, 150 kW wind turbines, and 500 kWh energy storage systems within commercial buildings. A detailed mathematical model for economic dispatch leverages a multi-load demand of 1.2 MW and flexible adjustment capabilities. The model aims to maximize on-site renewable energy use while balancing grid interaction. The NACO Algorithm, tested through comprehensive simulations, demonstrated significant improvements, resulting in a 12.96% reduction in environmental costs, an 18.4% reduction in the Levelized Cost of Energy (LCOE), and a 14.25 % reduction in total operational costs compared to traditional methods. Additionally, the system achieved annual CO2 savings of 25,000 tons, increased renewable energy absorption by 22 %, reduced grid dependency by 30 %, and decreased energy purchase costs by 20 %. Energy storage optimization also extended the storage system's lifecycle by 15%. These results highlight the enhanced synergy and complementarity of multiple energy sources within BIHES, showcasing its potential for substantial economic and environmental benefits.
ELSEVIER
2214-157X

2024
61

10.1016/j.csite.2024.104880
Thermodynamics
hybrid
WOS:001285963700001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001285963700001
title Synergizing renewable energy sources in building-integrated hybrid energy systems via niche-ant colony optimization
title_short Synergizing renewable energy sources in building-integrated hybrid energy systems via niche-ant colony optimization
title_full Synergizing renewable energy sources in building-integrated hybrid energy systems via niche-ant colony optimization
title_fullStr Synergizing renewable energy sources in building-integrated hybrid energy systems via niche-ant colony optimization
title_full_unstemmed Synergizing renewable energy sources in building-integrated hybrid energy systems via niche-ant colony optimization
title_sort Synergizing renewable energy sources in building-integrated hybrid energy systems via niche-ant colony optimization
container_title CASE STUDIES IN THERMAL ENGINEERING
language English
format Article
description The rapid advancement of Building-Integrated Hybrid Energy Systems (BIHES), characterized by renewable energy sources with variable generation patterns, presents significant challenges for effective integration and utilization. This paper introduces an optimal economic dispatch strategy for commercial BIHES using a Niche-Ant Colony Optimization (NACO) Algorithm. BIHES integrates renewable sources such as 200 kW photovoltaic panels, 150 kW wind turbines, and 500 kWh energy storage systems within commercial buildings. A detailed mathematical model for economic dispatch leverages a multi-load demand of 1.2 MW and flexible adjustment capabilities. The model aims to maximize on-site renewable energy use while balancing grid interaction. The NACO Algorithm, tested through comprehensive simulations, demonstrated significant improvements, resulting in a 12.96% reduction in environmental costs, an 18.4% reduction in the Levelized Cost of Energy (LCOE), and a 14.25 % reduction in total operational costs compared to traditional methods. Additionally, the system achieved annual CO2 savings of 25,000 tons, increased renewable energy absorption by 22 %, reduced grid dependency by 30 %, and decreased energy purchase costs by 20 %. Energy storage optimization also extended the storage system's lifecycle by 15%. These results highlight the enhanced synergy and complementarity of multiple energy sources within BIHES, showcasing its potential for substantial economic and environmental benefits.
publisher ELSEVIER
issn 2214-157X

publishDate 2024
container_volume 61
container_issue
doi_str_mv 10.1016/j.csite.2024.104880
topic Thermodynamics
topic_facet Thermodynamics
accesstype hybrid
id WOS:001285963700001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001285963700001
record_format wos
collection Web of Science (WoS)
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