THE ASSESSMENT OF EFFICIENCY OF THERMOPHOTOVOLTAIC UNITS APPLICATION FOR THERMAL AND ELECTRIC ENERGY PROVIDING


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Abstract

The application of solar radiation for producing energy is the hot topic and a worldwide trend. The plants converting solar energy to thermal and electric energy should become some day the main generating capacities, in this case, the use of fossil fuel can be reduced considerably. Many regions, in particular, the Republic of Crimea, are located in the zones suitable for the development of solar power. Complex producing of thermal and electric energy used simultaneously in the units combining thermal solar collector and the photoelectric generator is of special interest. Such units allow improving considerably the efficiency of transformation and application of energy coming from the sun. At the same time, considering different geographic and climate irregularities of the location of different regions, justification, and procedure of application of solar collectors with photovoltaic and thermal cells raise many questions. With regard to the conditions of the Republic of Crimea and based on the model of calculation of active solar capacities of the peninsula cities, the authors considered the possibility and reasonability of allocation of thermophotovoltaic helioprofiles mounted into the roofing material on the roofs of buildings and constructions and estimated their energy potential. In the result of the studies carried out with regard to the conditions of Sevastopol, the authors pre-calculated technical and economic indicators and determined the power characteristics of heliosystems. In the calculations, natural and stochastic changes of coming sunlight were considered. It is determined that the combined thermophotovoltaic helioprofiles mounted into the roof of buildings will allow achieving considerable economy of materials, areas and operating costs and increasing general efficiency of the whole system of the power supply of the object under the study.

About the authors

Vladimir Vladislavovich Kuvshinov

Sevastopol State University, Sevastopol

Email: kuvshinov.vladimir@gmail.com

PhD (Engineering), assistant professor of Chair “Renewables and Electric Systems and Networks”

Russian Federation

Boris Lvovich Krit

Moscow Aviation Institute (National Research University), Moscow

Email: bkrit@mail.ru

Doctor of Sciences (Engineering), professor of Chair “Technologies of Production of Devices and Information Systems for Aircraft Control”

Russian Federation

Natalya Vladislavovna Morozova

Russian Medical Academy of Continuous Professional Training, Moscow

Author for correspondence.
Email: innat.m@mail.ru

PhD (Pedagogics), assistant professor of Chair “Medical Equipment”

Russian Federation

References

  1. Kobysheva N.V., ed. Klimat Rossii [Climate of Russia]. Sankt Petersburg, Gidrometeoizdat Publ., 2001. 656 p.
  2. Morozova N.V. The Increasing of Efficiency of Solar Power Systems. Russia – ASEAN Energy Dialogue in the Field of Renewable Energy and Clean Energy Technologies: proc. 2nd workshop. ISTI, 2016, pp. 7–10.
  3. Kuvshinov V.V., Morozova N.V. Vozmozhnosti povysheniya moshchnostnykh kharakteristik solnechnykh ustanovok dlya ispolzovaniya v energetike Kryma [Possibilities of increase in power characteristics of solar installations for use in power industry of the Crimea]. Moscow, Sputnik+ Publ., 2017. 175 p.
  4. Vozobnovlyaemaya energetika 2003: sostoyanie, problemy, perspektivy: sbornik dokladov mezhdunarodnoy nauchno-prakticheskoy konferentsii [Renewable power of 2003: state, problems, prospects: Reports of the international scientific and practical conference]. Sankt Petersburg, SPbPU Publ., 2003. 616 p.
  5. Bokov V.A., Ena V.G., Efimov S.A. Ustoychivoe razvitie – strategiya razvitiya Kryma v 21 veke [Sustainable development – the strategy of development for the Crimea in the 21st century]. Simferopol, Assotsiatsiya podderzhki biologicheskogo i landshaftnogo raznoobraziya Kryma Publ., 2000. 80 p.
  6. Kibovskiy S.A., Efimov S.A., Petruk S.K., Safonov V.A. Energosberezhenie v Krymu: prilozhenie k nauchno-prakticheskomu diskussionno-analiticheskomu sborniku “Voprosy razvitiya Kryma” [Energy saving in the Crimea: the application to scientific practically debatable analytically to the collection of Questions of Development of the Crimea]. Simferopol, Tavriya-Plyus Publ., 2001. 220 p.
  7. Bagrov N.V., Bokov A.I., Bekirov E.A. Solnechnaya energetika dlya ustoychivogo razvitiya Kryma [Solar power for sustainable development of the Crimea]. Simferopol, Krymskiy nauchnyy tsentr Publ., 2009. 293 p.
  8. Kuvshinov V.V., Bashta A.I., Safonov V.A. Fototermopreobrazovatel solnechnoy energii [Photothermoconverter of solar energy], patent RF no. 150121, 2015.
  9. Bekman U., Keyli S., Daffi D. Raschet sistem solnechnogo teplosnabzheniya [Calculation of solar heat supply systems]. Moscow, Energoatomizdat Publ., 1988. 176 p.
  10. Kuznetsov K.V., Tyukhov I.I., Sergievskiy E.D. A research of characteristics of a solar air hybrid collector. Energoobespechenie i energosberezhenie v selskom khozyaystve: trudy 6-y Mezhdunarodnoy nauchno-tekhnicheskoy konferentsii. Moscow, GNU VIESKh Publ., 2008, pp. 227–231.
  11. Kuvshinov V.V., Bashta A.I. Fototermopreobrazovatel solnechnoy energii [Photothermoconverter of solar energy], patent RF no. 150122, 2015.
  12. Kuvshinov V.V. Combined solar systems to generate heat and power. Sbornik nauchnykh trudov SNUYaEiP, 2010, vyp. 2, pp. 182–189.
  13. Bashta A.I., Kuvshinov V.V. Economic justification of using heliprofile for an autonomous energy-saving building. Vestnik sotsialno-ekonomicheskikh issledovaniy, 2011, no. 2, pp. 12–16.
  14. Kuvshinov V.V. Methods of calculation and improve the utilization of the heat of photovoltaic installations. Sbornik nauchnykh trudov SNUYaEiP, 2013, vyp. 3, pp. 166–172.
  15. Koltun M.M. Optika i metrologiya solnechnykh elementov [Optics and metrology of solar cells]. Moscow, Nauka Publ., 1985. 300 p.
  16. Andreev V.M., Grilikhes V.A., Rumyantsev V.D. Fotoelektricheskoe preobrazovanie kontsentrirovannogo solnechnogo izlucheniya [Photoelectric transformation of concentrated solar radiation]. Leningrad, Nauka Publ., 1989. 405 p.
  17. Belyaev Yu.M., Nagaykin A.S., Razgonyaev Yu.V. Increase of the efficiency of the use of terrestrial photoelectric systems. Geliotekhnika, 1989, no. 2, pp. 6–10.
  18. GOST 28976-91. Fotoelektricheskie pribory iz kristallicheskogo kremniya. Metodika korrektsii rezultatov izmereniya voltampernoy kharakteristiki (MEK 891-87) [GOST 28976-91. Photovoltaic devices from crystalline silicon. Method of correction of the results of measuring the current-voltage characteristic (IEC 891-87)]. Moscow, Izdatelstvo standartov Publ., 2004. 42 p.
  19. Rumshinskiy L.Z. Matematicheskaya obrabotka rezultatov eksperimenta [The mathematical processing of the experimental results]. Moscow, Nauka Publ., 1971. 192 p.
  20. Raushenbakh G. Spravochnik po proektirovaniyu solnechnykh batarey [A handbook on solar batteries design]. Moscow, Energoatomizdat Publ., 1983. 397 p.
  21. State committee on the prices and tariffs of the Republic of Crimea. Tariffs for the population, Simferopol, 2016. The appendix No. 1 at the prices and tariffs of the Republic of Crimea from 21.12.2016 № 53/1. URL: gkz.rk.gov.ru.
  22. SNiP 2.04.01-85. Vnutrenniy vodoprovod i kanalizatsiya zdaniy [SNiP 2.04.01-85. Internal water supply and sewerage systems of buildings]. Moscow, Gosstroy Rossii Publ., 2000. 128 p.

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