Techno-economic analysis of a stand-alone hybrid renewable energy system with hydrogen production and storage options
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Date
2015
Authors
Yildiz Kalinci
A. Hepbasli
I. Dincer
Journal Title
Journal ISSN
Volume Title
Publisher
Elsevier Ltd
Open Access Color
Green Open Access
Yes
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
In the present study a hybrid renewable energy system using hydrogen energy as energy storage option is conceptually modeled for the Bozcaada Island in Turkey. The system is investigated from the techno-economic point of view. The Hybrid Optimization Model for Electric Renewable (HOMER) tool is used to define the optimum size of the equipment based on the geographical and meteorological data of the island. The HOMER uses the net present cost (NPC) method while ranking the system suitability. Also the cost of energy (COE) is calculated with the total annual cost (AC<inf>T</inf>). The study considers two scenarios which are only wind turbine and wind turbine/PV hybrid systems. Using the wind turbine/PV array system instead of wind turbine only decreases the NPC from $14624343 to $11960698. Also it decreases the hydrogen tank capacity to 400 kg and hence affects other equipment size and NPC. So the COE varies between $1.016/kWh and $0.83/kWh. According to this the optimum system components are defined as PV array-300 kW wind turbine (E33x2) fuel cell-100 kW converter-150 kW electrolyzer-200 kW and hydrogen tank-400 kg to supply a 1875 kWh/d primary load. Furthermore the effects of some parameters and the equipment on NPC are examined. Increasing potential of the renewable energy sources such as annual average wind speed or solar radiation decreases both COE and NPC. While the annual average solar radiation increases to 5 kWh/m2/d the NPC and COE decrease to $11673704 and $0.81/kWh. Likewise an increase in the annual average wind speed will decrease the costs to $11452712 and $0.795/kWh respectively. Also increasing the real interest i to 5% increases the COE to $1.043/kWh as expected. © 2021 Elsevier B.V. All rights reserved.
Description
Keywords
Cost Assessment, Electricity, Hydrogen Production, Renewable Energy, Digital Storage, Economic Analysis, Electric Energy Storage, Electricity, Fuel Cells, Hybrid Systems, Hydrogen Storage, Meteorology, Photovoltaic Cells, Renewable Energy Resources, Solar Radiation, Tanks (containers), Wind, Wind Turbines, Annual Average Wind Speed, Cost Assessment, Hybrid Optimization, Hybrid Renewable Energy Systems, Meteorological Data, Renewable Energies, Renewable Energy Source, Techno-economic Analysis, Hydrogen Production, Digital storage, Economic analysis, Electric energy storage, Electricity, Fuel cells, Hybrid systems, Hydrogen storage, Meteorology, Photovoltaic cells, Renewable energy resources, Solar radiation, Tanks (containers), Wind, Wind turbines, Annual average wind speed, Cost assessment, Hybrid optimization, Hybrid renewable energy systems, Meteorological data, Renewable energies, Renewable energy source, Techno-Economic analysis, Hydrogen production
Fields of Science
0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology
Citation
WoS Q
Scopus Q

OpenCitations Citation Count
276
Source
International Journal of Hydrogen Energy
Volume
40
Issue
Start Page
7652
End Page
7664
Collections
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Citations
CrossRef : 60
Scopus : 321
Captures
Mendeley Readers : 527
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