Exergoeconomic and environmental impact analyses of a renewable energy based hydrogen production system

Loading...
Publication Logo

Date

2013

Authors

Journal Title

Journal ISSN

Volume Title

Publisher

Pergamon-Elsevier Science Ltd

Open Access Color

Green Open Access

Yes

OpenAIRE Downloads

OpenAIRE Views

Publicly Funded

No
Impulse
Top 10%
Influence
Top 10%
Popularity
Top 10%

Research Projects

Journal Issue

Abstract

In this study exergoeconomic and environmental impact analyses through energy exergy and sustainability assessment methods are performed to investigate a hybrid version renewable energy (including wind and solar) based hydrogen and electricity production system. The dead state temperatures considered here are 10 °C 20 °C and 30 °C to undertake a parametric study. An electrolyzer and a metal hydride tank are used for hydrogen production and hydrogen storage respectively. Also the Proton Exchange Membrane Fuel Cell (PEMFC) and battery options are utilized for electricity generation and storage respectively. As a result the energy and exergy efficiencies and the sustainability index for the wind turbine are found to be higher than the ones for solar photovoltaic (PV) system. Also the overall exergy efficiency of the system is found to be higher than the corresponding overall energy efficiency. Furthermore for this system it can be concluded that wind turbine with 60 gCO<inf>2</inf>/month is more environmentally-benign than the solar PV system with 75 gCO<inf>2</inf>/month. Finally the total exergoeconomic parameter is found to be 0.26 W/$ when the energy loss is considered while it is 0.41 W/$ when the total of exergy loss and destruction rates are taken into account. Copyright © 2013 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved. © 2013 Elsevier B.V. All rights reserved.

Description

Keywords

Efficiency, Environmental Impact, Exergoeconomic, Exergy, Hydrogen, Renewable Energy, Energy And Exergy Efficiency, Environmental Impact Analysis, Exergoeconomic, Hydrogen Production Systems, Overall Energy Efficiency, Renewable Energies, Solar Photovoltaic System, Sustainability Assessment, Efficiency, Electrolytic Cells, Energy Dissipation, Energy Efficiency, Environmental Impact, Hydrogen, Hydrogen Production, Hydrogen Storage, Production Engineering, Proton Exchange Membrane Fuel Cells (pemfc), Solar Energy, Solar Power Generation, Sustainable Development, Wind Turbines, Exergy, Energy and exergy efficiency, Environmental impact analysis, Exergoeconomic, Hydrogen production systems, Overall energy efficiency, Renewable energies, Solar photovoltaic system, Sustainability assessment, Efficiency, Electrolytic cells, Energy dissipation, Energy efficiency, Environmental impact, Hydrogen, Hydrogen production, Hydrogen storage, Production engineering, Proton exchange membrane fuel cells (PEMFC), Solar energy, Solar power generation, Sustainable development, Wind turbines, Exergy, Exergoeconomic, Environmental Impact, Renewable Energy, Efficiency, Hydrogen, Exergy, Environmental impact, Exergoeconomic, Renewable energy, Efficiency, Exergy, Hydrogen

Fields of Science

0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

Citation

WoS Q

Scopus Q

OpenCitations Logo
OpenCitations Citation Count
65

Source

International Journal of Hydrogen Energy

Volume

38

Issue

14

Start Page

6104

End Page

6111
PlumX Metrics
Citations

CrossRef : 17

Scopus : 75

Captures

Mendeley Readers : 117

SCOPUS™ Citations

75

checked on Apr 08, 2026

Web of Science™ Citations

67

checked on Apr 08, 2026

Google Scholar Logo
Google Scholar™
OpenAlex Logo
OpenAlex FWCI
10.7299

Sustainable Development Goals

AFFORDABLE AND CLEAN ENERGY7
AFFORDABLE AND CLEAN ENERGY
DECENT WORK AND ECONOMIC GROWTH8
DECENT WORK AND ECONOMIC GROWTH
SUSTAINABLE CITIES AND COMMUNITIES11
SUSTAINABLE CITIES AND COMMUNITIES
RESPONSIBLE CONSUMPTION AND PRODUCTION12
RESPONSIBLE CONSUMPTION AND PRODUCTION