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AuthorSharafi, Masoud
AuthorElMekkawy, Tarek Y.
Available date2024-09-17T10:49:02Z
Publication Date2015
Publication NameProceedings of the ASME Design Engineering Technical Conference
ResourceScopus
URIhttp://dx.doi.org/10.1115/DETC2015-46181
URIhttp://hdl.handle.net/10576/59021
AbstractThe stochastic nature of energy demand and renewable energy (RE) resources make the design of hybrid renewable energy systems as a complex problem. In this paper, an innovative stochastic optimization approach is proposed for optimal sizing of hybrid renewable energy systems (HRES) incorporating existing uncertainties in RE resources and energy load. The design problem is formulated based on multiobjective optimization framework with three objective functions including minimize total net present cost (NPC), maximize renewable energy ratio (RER), and minimize fuel emission. The reliability index named loss of load probability (LLP) is considered as a constraint with a desirable level. The Pareto front (PF) of developed multi-objective optimization problem is approximated with the help of the integration of dynamic multi-objective particle swarm optimization (DMOPSO) algorithm, simulation module, and sampling average method. Synthetic data generation approaches are applied to tackle the randomness in wind speed, solar irradiation, ambient temperature, and energy load. A building located in Canada is used as the case study to assess the performance of the developed model. Finally, the obtained PF by the stochastic optimization approach is examined against the deterministic PF using the most famous performance metrics.
Languageen
PublisherAmerican Society of Mechanical Engineers (ASME)
SubjectDesign
Life cycle
Loss of load probability
Multiobjective optimization
Nanosystems
Optimization
Particle swarm optimization (PSO)
Stochastic systems
Wind
Hybrid Renewable Energy System (HRES)
Hybrid renewable energy systems
Multi objective particle swarm optimization
Multi-objective optimization problem
Performance metrics
Stochastic optimization approach
Stochastic optimizations
Synthetic data generations
Renewable energy resources
TitleStochastic optimization of hybrid renewable energy systems
TypeConference Paper
Pagination-
Volume Number4
dc.accessType Abstract Only


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