Preview

Architecture, Construction, Transport

Advanced search

Feasibility study of solar collectors installation for private residence

https://doi.org/10.31660/2782-232X-2024-1-45-57

Abstract

The hot water supply system of Perm uses solar energy. The aim of the study was to substantiate the economic efficiency of solar collectors and determine their payback period taking into account climatic conditions, equipment cost and economic criteria. The proposed technical solutions of solar energy using were analyzed and compared with electric heating. During the study, the authors defined the required minimum solar collector area for a household (taking into account the hot water standard for Perm) as a functional dependence of the amount of incoming solar insolation on the amount of using heat energy. We evaluated domestic and imported solar collectors on the required parameters. The value of the reduction in the payment for electric energy was taken as the income for the households. The economic efficiency was calculated based on the forecasted average electricity tariff, taking into account inflation from 2 to 16 %. The payback of a solar hot water heating system depends primarily on the cost of purchase, installation of equipment and on the discount rate. The practical significance is to substantiate the economic efficiency of solar collectors for consumers. The methodology and results of the study can be used in private residential construction and in justification of the use of alternative energy sources for Russian regions with low insolation. 

About the Authors

T. N. Beloglazova
Perm National Research Polytechnic University
Russian Federation

Tatyana N. Beloglazova, Cand. Sc. in Engineering, Associate Professor, Associate Professor at the Department of Heat and Gas Supply, Ventilation and Water Supply, and Drainage

Perm



T. N. Romanova
Perm National Research Polytechnic University
Russian Federation

Tatyana N. Romanova, Cand. Sc. in Engineering, Associate Professor, Associate Professor at the Department of Heat and Gas Supply, Ventilation and Water Supply, and Drainage

Perm



References

1. Degtev, I. A., Denisova, Yu. V., Zakharova, & M. Yu., Babaeva, G. B. (2022). Formation of individual residential houses of increased comfort with the use of energy-saving technologies. University Science, 2(14), pp. 39-42. (In Russian).

2. Gorshkov, A. S., Dergunov, D. V., & Zavgorodny, V. V. (2013). Technology and organization of the building with zero energy consumption. Construction of Unique Buildings and Structures, 3(8), pp. 12-23. (In Russian).

3. Silakov, V. R., & Baklin, A. A. (2016). Sistema udalennogo monitoringa raboty sistemy solnechnogo teplosnabzheniya lokal'nogo ob"ekta. Regional Architecture and Construction, 4(29), pp. 87-92. (In Russian).

4. Pakhomova, M. A., & Khramtsov, A. B. (2022). Low-rise construction in Russia and abroad: a review of practices. Architecture, Construction, Transport, (3(101)), pp. 20-31. (In Russian). DOI 10.31660/2782-232X-2022-3-20-31.

5. Elokhov, A. E. (2009). Osobennosti proektirovaniya passivnogo doma v Rossii. Vestnik MGSU [Monthly Journal on Construction and Architecture], (4), pp. 313-316. (In Russian).

6. Khujaev, P. S. (2022). Passive heating system of a residential building. Architecture, Construction, Transport, (4(102)), pp. 53-59. (In English). DOI 10.31660/2782-232X-2022-4-53-59.

7. Bryzgalin, V. V., & Solov'ev, A. K. (2018). The use of passive solar heating systems as part of the passive house. Vestnik MGSU [Monthly Journal on Construction and Architecture], 13-4(115), pp. 472-481. (In Russian). DOI 10.22227/1997-0935.2018.4.472-481.

8. Elsheniti, M. B., Kotb, A., & Elsamni, O. (2019). Thermal performance of a heat-pipe evacuated-tube solar collector at high inlet temperatures. Applied Thermal Engineering, 154, pp. 315-325. (In English). DOI 10.1016/j.applthermaleng.2019.03.106.

9. Al-Zoubi, H., Al-Khasawneh, Ya., & Omar, W. (2021). Design and feasibility study of an on-grid photovoltaic system for green electrification of hotels: a case study of Cedars hotel in Jordan. International Journal of Energy and Environmental Engineering, 12(4), pp. 611-626. (In English). DOI 10.1007/s40095-021-00406-z.

10. Akash, B. A., & Mohsen, M. S. (1999). Energy analysis of Jordan's urban residential sector. Energy, 24 (9), pp. 823-831. (In English).

11. Akinoglu, B. G., Shariah, A. M., & Ecevit, A. (1999). Solar domestic water heating in Turkey. Energy, 24(5), pp. 363-374. (In English).

12. Tsvetkov, N. A., Krivoshein, Yu. O., Tolstykh, A. V., & Khutornoy, A. N. (2019). Modeling insolation on horizontal surface for calculation of half rates of solar radiation. News of Higher Educational Institutions. Construction, 6(726), pp. 81-92. (In Russian). DOI 10.32683/0536-1052-2019-726-6-81-92.

13. Kitaytseva, E. Kh., & Konstantinova, D. A. (2017). Information supply for solar thermal systems mathematical modeling. Vestnik MGSU [Monthly Journal on Construction and Architecture], Vol. 12, 6(105), pp. 687-691. (In Russian).

14. Mershiev, A. A., Sheps, R. A., Lobanov, D. V.1, & Shashin, A. V. (2020). Determination of the amount of direct solar radiation flux directed at horizontal surface. Regional Architecture and Engineering, 4(45), pp. 137-143. (In Russian).

15. Frid, S. E., Lisitskaya, N. V., Tarasenko, A. B., Frolova, N. D., & Suleimanov, M. Zh. (2020). Photoelectric water heaters use in hot climate conditions. Problems of the Regional Energetics, 3(47), 92-100. (In Russian). DOI 10.5281/zenodo.4018982.

16. Falih, H., Hamed, A. J., & Khalifa, A. H. N. (2022). Techno-economic assessment of a hybrid connected PV solar system. International Journal of Air-Conditioning and Refrigeration, 30(1), pp. 1-15. (In English). DOI 10.1007/s44189-022-00003-7.

17. Lesnikova, K. P., & Sokolskii, A. K. (2021). Solar heating systems as an alternative method for autonomous hot water supply and heating. Innovatsii tekhnicheskikh resheniy v mashinostroenii i transporte: Sbornik statey VII Vserossiyskoy nauchno-tekhnicheskoy konferentsii dlya molodykh uchenykh i studentov s mezhdunarodnym uchastiem, March, 16-17. Penza, Penza State Agrarian University Publ., pp. 144-150. (In Russian).


Review

For citations:


Beloglazova T.N., Romanova T.N. Feasibility study of solar collectors installation for private residence. Architecture, Construction, Transport. 2024;(1):45-57. (In Russ.) https://doi.org/10.31660/2782-232X-2024-1-45-57

Views: 33


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2782-232X (Print)
ISSN 2713-0770 (Online)