Techno-Economic Feasibility of Grid-Connected Solar PV System at Near East University Hospital, Northern Cyprus
Abstract
:1. Introduction
1.1. Solar Energy Potential in Northern Cyprus
1.2. Importance of the Study and Research Gap
2. Materials and Methods
2.1. Energy Situation at the Near East University Hospital
2.2. Data
- The hourly meteorological data of the Lefkoşa location are compared with three databases, namely, the Satellite Application Facility on Climate Monitoring (CMSAF), Surface Radiation Data Set-Heliosat (SARAH), and ECMWF ERA-5 produced by the European Centre for Medium-range Weather Forecast to show the accuracy of the database. In general, the accuracy of the satellite database is enough to decide on the design of the solar PV system [68].
- Based on the results of the first criteria, the satellite database of the Lefkoşa location and NEU hospital location are compared to verify that both values are closed to each other, and to verify that solar radiation can be considered constant in a wide area.
2.3. On-Grid Solar PV System
2.3.1. PV System Sizing
2.3.2. PV-Module Selection and Inverter
2.3.3. Simulation Tool
3. Results
3.1. Characteristics of Global Solar Radiation
3.1.1. Comparison of Satellite Database with Actual Data for Lefkoşa
3.1.2. Monthly and Hourly Global Solar Radiation, Sunshine Duration, and Ambient Temperature
3.2. Project Development and Financial Assessment
3.2.1. Technical Viability
3.2.2. Economic Sustainability
4. Discussion
5. Conclusions and Future Work
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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---|---|---|---|
[27] | 2011 | Feasibility of a 1 MW grid-connected PV system in Nicosia (Lefkoşa), Morphou (Güzelyurt), and Rizokarpaso (Dipkarpaz) | The feasibility of a two-axis PV system was higher than a fixed-structure solar system |
[28] | 2012 | Evaluate and compare the use of the solar thermal energy collectors (Parabolic Trough and Fresnel systems) over Northern Cyprus topography | Fresnel systems have an advantage over Parabolic Trough due to higher solar irradiation absorption, lower CO2 emissions, and lower operating cost. |
[29] | 2014 | Installing a 30 MW hypothetical solar chimney power plant under Northern Cyprus conditions | The annual electrical energy from the proposed system was estimated to be 94.5 GWh. This amount of energy output would contribute significantly to meeting 22,128 residences household’s electrical energy demand. |
[30,31] | 2015 | Build 1.275 GW PV plant in Serhatköy site | The plant will improve the electricity sector and will be able to reduce emissions to an acceptable level. |
[32] | 2016 | Design and techno-economic analysis of a standalone PV system to meet the electricity of a house in the rural fringe of Famagusta | The electricity generation cost was 0.73 TL/kWh, and the developed system is a viable technology for the electrification of a house in Cyprus. |
[33] | 2016 | The performance and economic viability of two different PV plants (Fixed-tilt and parabolic trough) with a capacity of 40 MW in Nicosia and Famagusta | The highest profitability was found in Nicosia, and utilizing solar power plants will help to reduce large amounts of CO2 emissions. |
[34] | 2017 | Develop a hybrid system to generate electricity for a household in Nicosia | The hybrid system is considered an economical option for electricity generation in the selected location. |
[35] | 2018 | Develop a 12 MW grid-connected wind farms and fixed-tilt PV power plants in Lefkoşa and Girne | The selection locations were found suitable to build a PV system for energy production and reduce fuel consumption. |
[36] | 2018 | Propose a 1 MW grid-connected PV power plant with the various sun-tracking systems in Lefke town | The electricity cost was found within 0.109–0.150 $/kWh, and annual GHG emission reduction was varied from 1321 to 1829 tCO2. |
[37] | 2018 | Investigate the utilizing of solar energy Famagusta (Gazimağusa) city | Famagusta City has huge potential for solar energy, but the city is not able to generate the required amount of solar energy because of its inappropriate urban design |
[38] | 2018 | Find the best location for installing a PV power plant based on the highest profitability of the project. | Güzelyurt region has the highest solar energy potential and economic feasibility to install a PV power plant in the future. |
[39] | 2018 | Propose a 4.85 kW grid-connected PV rooftop systems in Nicosia (Lefkoşa), Morphou (Güzelyurt) and Dipkarpaz | All selected locations have a higher potential for solar energy |
[40] | 2019 | Develop a 6.4 kW grid-connected PV wind systems for household in Lefkoşa, Girne and Gazimağusa | The PV systems are an economical option for generating electricity in the selected location compared to wind systems. |
[41] | 2019 | Propose a 45 kW rooftop-building grid-connected PV power system in Lefke town | The electricity cost of the proposed system was found to be 0.056 $/kWh, which is lower than the energy cost of traditional energy (0.15 $/kWh) |
[42] | 2019 | Using of PV as a shading device for solving the heating problems in the residential sector in Famagusta | The developed system produced around 50% of the electricity needs of the building |
[43] | 2019 | Present the performance assessment of 110 kW grid-connected solar system with various PV technologies | The CdTe PV system has a higher performance ratio than other PV technologies, and the proposed system can help reduce the green gas emissions and supply electricity to the Near East University. |
[44] | 2019 | Present the performance assessment of 110 kW grid-connected solar system at a different location in Northern Cyprus | The annual average performance ratio was within the range of 75–80% for all PV technologies. |
[45] | 2019 | Techno-economic feasibility evaluation for a solar-powered seawater desalination plant in Güzelyurt | The proposed system can be considered as a good solution for solving water scarcity and reducing greenhouse gas emissions. |
[46] | 2019 | Technical, environmental and economic aspects for developing PV/wind hybrid system in Middle East Technical University Northern Cyprus Campus | The proposed system will reduce the annual fuel consumption of the island by 9920 barrels which will also reduce the annual CO2 emissions by 3622 tons. |
[47] | 2020 | Develop a 30 kW grid-connected PV system for Near East University grand library with various types of PV systems used on building PV technologies | The performance of freestanding mounting position system with thin-film (CdTe) was found better than building-integrated PV. |
[48] | 2020 | The feasibility of 100 MW grid-connected PV plant in Lefkoşa | The proposed system would help to reduce fuel consumption, electricity tariffs, and greenhouse gas emissions |
[49] | 2020 | Develop a 6 kW PV-Wind hybrid system to meet a single household electricity demand in Güzelyurt | The proposed system helped to reduce the electricity bill of the household. |
Manufacturer | Module Type | Maximum Power [W] | Efficiency [%] | Module Area [m2] | Module Price [$] | Selection Term |
---|---|---|---|---|---|---|
Jinko | JKM330M-60-V | 330 | 19.78 | 1.668 | 115 | 34.03 |
Solar Fabrik | - | 340 | 20.14 | 1.687 | 237 | 17.13 |
Panasonic | - | 325 | 19.40 | 1.674 | 257 | 14.66 |
Ankara Solar | AS-M60-310W | 310 | 19.00 | 1.630 | 77 | 46.93 |
AXITEC | AC-430MH/144V | 430 | 19.33 | 2.174 | 120.4 | 31.76 |
Suntech | STP325-24/Vfw | 335 | 17.20 | 1.944 | 81 | 36.59 |
SunLink | - | 435 | 20 | 2.1073 | 105 | 39.32 |
AIONRISE | AE410HM6-72 | 410 | 20.66 | 1.674 | 115 | 44.00 |
Tide Solar | - | 450 | 20.40 | 2.208 | 90 | 46.20 |
Regitec Solar | RMH60/380S1 | 380 | 20.9 | 1.853 | 110 | 38.96 |
Austa Energy | AU410-27V-MHB | 410 | 20.97 | 1.955 | 99 | 44.42 |
Horay Solar | HS166-380-120M | 380 | 20.50 | 1.823 | 84 | 51.11 |
München Energieprodukte GmbH | - | 440 | 19.9 | 2.209 | 110 | 36.03 |
Fortunes Solar | FDS-M6M-60-355BK | 355 | 19.26 | 1.868 | 82 | 44.64 |
Item | Specification | |
---|---|---|
Manufacturer | Horay Solar | Ankara Solar |
Model | HS166-380-120M | AS-M60-310W |
Maximum Power (Pmax) [W] | 380 | 310 |
The voltage at Maximum Power (Vmp) [V] | 34.5 | 31.7 |
Current at Maximum Power (Impp) [A] | 11.04 | 9.8 |
Open Circuit Voltage (Voc) [V] | 41.7 | 39.7 |
Short Circuit Current (Isc) [A] | 11.55 | 10.12 |
Operating Temperature Range [°C] | −40~85 | −40~85 |
Temperature Coefficient of Pmax [%/°C] | −0.36 | −0.41 |
Temperature Coefficient of Voc [%/°C] | −0.28 | −0.31 |
Temperature Coefficient of Isc [%/°C] | 0.05 | 0.05 |
Year | Statistical Indicators | Product | ||
---|---|---|---|---|
SARAH | CMSAF | ERA5 | ||
2014 | R-squared | 0.9539 | 0.8276 | 0.9669 |
RMSE | 7.5109 | 10.0512 | 5.0139 | |
MAE | 4.6397 | 6.5861 | 2.7992 | |
2015 | R-squared | 0.9677 | 0.8144 | 0.9610 |
RMSE | 6.8053 | 10.3353 | 5.2303 | |
MAE | 4.3925 | 6.7498 | 3.0006 | |
2016 | R-squared | 0.9724 | 0.8195 | 0.9555 |
RMSE | 8.3007 | 10.4547 | 5.6626 | |
MAE | 5.3651 | 6.7445 | 3.2477 |
Solar Panel used in the System | Daily Solar Radiation Titled [kWh/m2/day] | Annual Solar Radiation-Tilted [MWh/m2] | Annual Energy Exported to the Grid [kWh] | Capacity Factor [%] | |
---|---|---|---|---|---|
AS-M60-310W | 20 | 5.63 | 2.06 | 2,835,190 | 18.1 |
25 [31] | 5.67 | 2.07 | 2,851,747 | 18.2 | |
30 | 5.67 | 2.07 | 2,853,019 | 18.2 | |
31 * | 5.66 | 2.07 | 2,851,437 | 18.2 | |
35 [96] | 5.63 | 2.06 | 2,838,998 | 18.10 | |
40 | 5.57 | 2.03 | 2,809,747 | 17.9 | |
45 [96] | 5.47 | 2.00 | 2,765,404 | 17.6 | |
50 | 5.34 | 1.95 | 2,706,117 | 17.3 | |
55 [32] | 5.34 | 1.89 | 2,633,554 | 16.8 | |
HS166-380-120M | 20 | 5.63 | 2.06 | 2,852,549 | 18.2 |
25 [31] | 5.67 | 2.07 | 2,869,207 | 18.3 | |
30 | 5.67 | 2.07 | 2,870,487 | 18.3 | |
31 * | 5.66 | 2.07 | 2,868,895 | 18.3 | |
35 [96] | 5.63 | 2.06 | 2,856,380 | 18.2 | |
40 | 5.57 | 2.03 | 2,826,950 | 18.0 | |
45 [96] | 5.47 | 2.00 | 2,782,335 | 17.8 | |
50 | 5.34 | 1.95 | 2,722,746 | 17.4 | |
55 [32] | 5.18 | 1.89 | 2,649,678 | 16.9 |
Parameter | Unit | Value |
---|---|---|
PV module cost | $ | 77 (AS-M60-310W) 84 (HS166-380-120M) |
Number of modules | - | 5771 (AS-M60-310W) 4708 (HS166-380-120M) |
The lifetime of the PV module | Year | 25 |
Cost of each unit of inverter | $ | 155,647 |
Miscellaneous/contingency fund | % of the total initial cost | 3 |
Installation and spare parts | % of the total initial cost | 8.6 |
O&M cost | Annual | 1.5 c$/kWh |
Lifetime of inverter | Year | 13 |
Feasibility study, development, and engineering cost | % of the total initial cost | 0.6 |
Inverter replacement periodic cost | Every thirteen years | Equal to inverter’s cost |
Inflation rate | % | 8 |
Discount rate | % | 6 |
Project life | Year | 25 |
Energy cost increase rate | % | 5 |
Reinvestment rate | % | 9 |
Debt ratio | % | 70 |
Debt interest rate | % | 0 |
Debt term | Year | 20 |
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Kassem, Y.; Gökçekuş, H.; Güvensoy, A. Techno-Economic Feasibility of Grid-Connected Solar PV System at Near East University Hospital, Northern Cyprus. Energies 2021, 14, 7627. https://doi.org/10.3390/en14227627
Kassem Y, Gökçekuş H, Güvensoy A. Techno-Economic Feasibility of Grid-Connected Solar PV System at Near East University Hospital, Northern Cyprus. Energies. 2021; 14(22):7627. https://doi.org/10.3390/en14227627
Chicago/Turabian StyleKassem, Youssef, Hüseyin Gökçekuş, and Ali Güvensoy. 2021. "Techno-Economic Feasibility of Grid-Connected Solar PV System at Near East University Hospital, Northern Cyprus" Energies 14, no. 22: 7627. https://doi.org/10.3390/en14227627
APA StyleKassem, Y., Gökçekuş, H., & Güvensoy, A. (2021). Techno-Economic Feasibility of Grid-Connected Solar PV System at Near East University Hospital, Northern Cyprus. Energies, 14(22), 7627. https://doi.org/10.3390/en14227627