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Evaluation of Work Efficiency of the Solar Power Plant Installed on the Roof of a House in Hanoi City

https://doi.org/10.21122/1029-7448-2020-63-1-30-41

Abstract

Vietnam is a country of a great solar potential; solar technology is growing rapidly in Vietnam and investors are very interested in building solar power plants. Construction of the rooftop solar power stations can help owners reduce monthly electricity costs and even get economic benefits by selling excess electricity coming from a solar power plant (PV) to the utility grid. In this study, the design results of a rooftop grid-tied solar power station with the capacity of 26 kWp for a commercial building were introduced to have a basis to assess the operation ability of solar power station under solar radiation conditions in Hanoi city, Vietnam. The simulation results using the PVsyst program have made it possible to calculate the solar energy potential in Hanoi city, the power generation and efficiency of the grid-tied solar power station. Solar power has been applied in Vietnam since the 1990s but is mainly used for areas that were far from national power grid such as mountainous areas, islands. Small scale grid-tied solar power has been developed since 2010 and mainly is used for residential applications or small and medium scale consumers. The total capacity of electricity produced by solar power plants in Vietnam by 2017 was only about 8 MW; this value is very low as compared to the potential of solar power in Vietnam. This is due to the absence of the government support for the policy of developing solar power. In accordance with the current roadmap of raising electricity prices in Vietnam, construction investment of rooftop solar power stations is economically feasible while contributing to environmental protection and counteracting climate change phenomenon by reducing the amount of CO2 emitted into the environment.

About the Authors

T. N. Nguyen
Institute of Energy Science, Vietnam Academy of Science and Technology
Viet Nam

Address for correspondence: Nguyen Thuy Nga - Institute of Energy Science, Vietnam Academy of Science and Technology, 18 Hoang Quoc Viet str., Hanoi, Vietnam. Tel.: +84 903 22-44-48     nguyenthuynga@ies.vast.vn



V. D. Sizov
Belarusian National Technical University
Belarus
Minsk


M. P. Vu
Institute of Energy Science, Vietnam Academy of Science and Technology
Viet Nam
Hanoi


T. T. H. Cu
Institute of Energy Science, Vietnam Academy of Science and Technology
Viet Nam
Hanoi


References

1. Global Market Outlook for Solar Power 2018–2022. Solar Power Europe. Available at: https://www.solarpowereurope.org/global-market-outlook-2018-2022/.

2. Maronchuk I. I., Sanikovich D. D., Mironchuk V. I. (2019) Solar Cells: Current State and Development Prospects. Energetika. Izvestiya Vysshikh Uchebnykh Zavedenii i Energeticheskikh Ob’edinenii SNG = Energetika. Proceedings of the CIS Higher Education Institutions and Power Engineering Associations, 62 (2), 105–123. https://doi.org/10.21122/1029-74482019-62-2-105-123 (in Russian).

3. International Renewable Energy Agency (2018) Renewable Capacity Statistics 2018. Available at: https://nangs.org/analytics/irena-renewable-capacity-statistics-2018-eng.pdf.

4. Decision on the Support Mechanisms for the Development of Solar Power Projects in Vietnam: Prime Minister of Vietnam No: 11/2017/QD-TTg. Available at: https://ru.scribd.com/document/ 408725603/Decision-11-2017-of-PM-on-Solar-PV-FIT-Eng.

5. Nguyen Khanh Q. (2007) Alternatives to Grid Extension for Rural Electrification: Decentralized Renewable Energy Technologies in Vietnam. Energy Policy, 35 (4), 2579–2589. https://doi.org/10.1016/j.enpol.2006.10.004.

6. Ministry of Industry and Trade of the Socialist Republic of Vietnam (2015) Maps of Solar Resource and Potential in Vietnam. Available at: https://www.researchgate.net/publication/ 288761369_Maps_of_Solar_Resource_and_Potential_in_Vietnam.

7. Khanh Toan P., Minh Bao N., Ha Dieu N. (2011) Energy Supply, Demand, and Policy in Viet Nam, with Future Projections. Energy Policy, 39 (11), 6814–6826. https://doi.org/10.1016/ j.enpol.2010.03.021.

8. Polom J., Gastón M., Vindel J. M., Pagola I. (2015) Spatial Variability and Clustering of Global Solar Irradiation in Vietnam from Sunshine Duration Measurements. Renewable and Sustainable Energy Reviews, 42, 1326–1334. https://doi.org/10.1016/j.rser.2014.11.014.

9. Kies A., Schyska B., Thanh D. V., Lueder von Bremen L., Heinemann D., Schramm S. (2017) Large-Scale Integration of Renewable Power Sources into the Vietnamese Power System. Energy Procedia, 125, 207–213. https://doi.org/10.1016/j.egypro.2017.08.188.

10. Soualmia A., Chenni R. (2016) Modeling and Simulation of 15 MW Grid-Connected Photovoltaic System Using Pvsyst Software. IEEE International Renewable and Sustainable Energy Conference, Marrakech, 702–705. https://doi.org/10.1109/IRSEC.2016.7984069.

11. Shiva Kumar B., Sudhakar K. (2015) Performance Evaluation of 10 MW Grid Connected Solar Photovoltaic Power Plant in India. Energy Reports, 1, 184–192. https://doi.org/10.1016/j. egyr. 2015.10.001.

12. PVsyst Photovoltaic Software. Available at: http://www.pvsyst.com/en/.

13. Japan International Cooperation Agency (2017) Operational Manual for MRV on City-Level Climate Change Mitigation Actions.


Review

For citations:


Nguyen T.N., Sizov V.D., Vu M.P., Cu T.T. Evaluation of Work Efficiency of the Solar Power Plant Installed on the Roof of a House in Hanoi City. ENERGETIKA. Proceedings of CIS higher education institutions and power engineering associations. 2020;63(1):30-41. (In Russ.) https://doi.org/10.21122/1029-7448-2020-63-1-30-41

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ISSN 1029-7448 (Print)
ISSN 2414-0341 (Online)