Discussions emphasized the need for reforming energy subsidies to incentivize renewable investments, and the importance of grid integration technologies like energy storage and smart grids to...
PDF | On Dec 14, 2020, Mohammad Zamanlou and others published Design and Analysis of Solar Water Pumping with Storage for Irrigation in Iran | Find, read and cite all the research you need on
Smart Solar Charging is a sustainable energy system on district level. It combines the production of renewable energy with Vehicle2Grid-charging points and car sharing systems. Read more. The solution is surprisingly simple: storage of renewable energy in electric cars. The
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A hybrid algorithm for short-term solar power prediction—sunshine state case study analysis of stand-alone hybrid photovoltaic–diesel–battery systems for rural electrification in eastern part of Iran—A step toward sustainable rural development Realistic and intelligent management of connected storage devices in future smart
He obtained M.Sc. and PhD degrees in electrical engineering from Sharif University of Technology, Tehran, Iran on 2008 and 2012, respectively. He is head of the Smart Energy Systems Lab. at University of Tabriz. The main
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An optimal day-ahead operation of a microgrid (MG) based on an energy hub (EH) that is an industrial building, is presented in this paper. The proposed EH includes wind turbine (WT), photovoltaic (PV), triple generation that is combined cooling, heat and power, and salt water desalination.
Solar power generation has seen high growth in recent years, mainly through photovoltaics (PV) and followed by concentrating solar thermal power (CSP) plants in Iran. The potential for PV is
In this regard Dr. Kamani, the head of Iran''s Renewable Energy and Energy Efficiency Organization (SATBA), said, In the first step, according to the approval of the Supreme Economic Council, a special and
Design, thermodynamic, and wind assessments of a compressed air energy storage (CAES) integrated with two adjacent wind farms: A case study at Abhar and Kahak sites, Iran. Multi criteria site selection model for wind-compressed air energy storage power plants in Iran. Renew Sustain Energy Rev, 32 (2014), pp. 579-590, 10.1016/j.rser.2014.01.054.
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DOI: 10.1109/HONET50430.2020.9322660 Corpus ID: 231715155; Design and Analysis of Solar Water Pumping with Storage for Irrigation in Iran @article{Zamanlou2020DesignAA, title={Design and Analysis of Solar Water Pumping with Storage for Irrigation in Iran}, author={Mohammad Reza Zamanlou and Mohammad Tariq Iqbal}, journal={2020 IEEE 17th International
He obtained M.Sc. and PhD degrees in electrical engineering from Sharif University of Technology, Tehran, Iran on 2008 and 2012, respectively. He is head of the Smart Energy Systems Lab. at University of Tabriz. The main areas of his interests are Renewable Energies, Micro Grid systems and smart grids.
The world is changing and energy is becoming increasingly expensive. Many governments around the world look to renewables as the only solution. Wind generation, solar power, hydro electricity are all renewable energy sources. With the exception of solar, most systems are expensive to buy and install and are generally suited for large scale installations.
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2020 IEEE 17th International Conference on Smart Communities: Improving Quality of Life Using ICT, IoT and AI (HONET), 2020. In this project, two kinds of solar-powered water pump systems for micro-irrigation of a 14.7-hectare grape garden located in Iran were designed and studied. The difference between the systems is the storage type.
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In 2019, "Smart City Research Center of Iran" was established with the cooperate with the University of Tehran, based on various needs at organizational, urban and national levels. It is commissioned to fulfill research & commercial requirements in all aspects of smart cities according to social, economic and logistic contexts of Iran.
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IET Smart Cities; IET Smart Grid; IET Software; IET Systems Biology solar-powered compressed air energy storage and ice storage conditioner: A case study in the city of Kaveh, Iran. The proposed framework is implemented on the industrial building located in the industrial city of Kaveh, Iran. The simulation results show that using ESSs
University of Tabriz is honored to host the 11 th Smart Grid Conference (SGC 2021) in cooperation of the Iranian Society of Smart Grid (ISOSG). This conference will be held on 7-9 December 2021. The SGC 2021 is programmed with the aim of extending the technical knowledge to provide a forum for exchanging technical and scientific findings, presenting the
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However, 27 MW of installed wind power capacity was added to the system in 2014 (Farfan and Breyer 2017). Solar power generation has seen high growth in recent years, mainly through photovoltaics (PV) and followed by concentrating solar thermal power (CSP) plants in Iran.
The potential for PV is extremely high in Iran, mainly due to having about 300 clear sky sunny days per year on two-thirds of its land area and an average 2200 kWh solar radiation per square meter (Najafi et al. 2015).
In terms of storage, the low installed capacities can be explained by the fact that Iran has a high availability of RE sources, particularly wind energy, solar PV and hydropower, which can produce electricity all-year-round (Fig. 6). The total storage capacities soar from 9.7 TWh in the country-wide scenario to 110.9 TWh in the integrated scenario.
Natural gas has been the main energy resource in Iran so far with a share of 60% of total primary energy consumption in 2013, following by oil with 38%, hydropower with 1–2%, and a marginal contribution of coal, biomass and waste, nuclear power and non-hydro renewables (BP Group 2014; EIA 2015).
Modern biomass, waste-to-energy and geothermal power production are the least exploited energy sources in Iran. However, waste-to-energy projects will become more important. The installed RE capacity in Iran can be seen in Table 2. Table 2 Installed RE capacity in Iran (MW)
As Iran’s energy system is currently dominated by domestic natural gas usage, SNG can logically play a significant role in addressing future energy demand. The system total annual cost and capex increased from 15 to 119 b€ and from 167 to 1150 b€, respectively.
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