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Results on the Radiant Temperature of the Building Envelope at a High-Voltage Wastewater Pumping Station

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Power Technology and Engineering Aims and scope

This paper presents the findings of a survey of the temperature regimes of enclosing structures at a high-voltage wastewater pumping station in Moscow. The study reviewed the factors that influence the temperature and humidity modes of the building envelope walls in the underground part. Contemporary research on the modeling of various physical characteristics of hydraulic structures is also presented. The present research will benefit designers, maintenance organization engineers, graduate students, and students studying hydraulic engineering, water supply, and wastewater disposal.

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References

  1. L. S. Vasilevskaya, N. A. Volgin, “The use of non-contact methods to expand the possibilities of visual inspection in assessing the technical condition of hydraulic structures,” Gidrotekhn. Stroit., No. 6, 12 – 18 (2021).

  2. V. V. Berlin, O. A. Muravyov, “Automatic detection of a pipeline rupture based on the parameters of the transient process in a turbine,” Gidrotekhn. Stroit., No. 12, 51 – 52 (2014).

  3. V. V. Berlin, O. A. Muravyov, “Investigation of resonant phenomena in pressure conduits and suction pipes of hydroelectric power stations,” Gidrotekhn. Stroit., No. 7, 46 – 58 (2012).

  4. M. P. Sainov, V. B. Soroka, “Influence of the thickness of a non-rock base on the stress-strain state of the concrete screen of a rockfill dam,” Izv. VNIIG im. B. E. Vedeneeva, 301, 60 – 65 (2021).

    Google Scholar 

  5. K. A. Kurganovich, A. V. Shalikovskii, M. A. Bosov, and D. V. Kochev, “The use of unmanned aerial vehicles for monitoring the state of ownerless flood control hydraulic structures in the Trans-Baikal Territory,” Gidrosfera. Opasn. Prots. Yavl., 2(1), 32 – 43 (2020). https://doi.org/10.34753/HS.2020.2.1.32

  6. V. Volshanik, G. Orekhov, “Substantiation of countervortex spillway structures of hydrotechnical facilities,” East.-Eur. J. Enterp. Technol., 1(8(91)), 24 – 32 (2018). https://doi.org/10.15587/1729-4061.2018.123918

  7. V. I. Prokhorov, M. A. Razakov, “Sources of heat and cold in modeling the thermal regime of a wastewater pumping station,” Sist. Tekhnol., No. 1(34), 43 – 47 (2020).

  8. V. S. Ignatchik, V. B. Konovalov, P. V. Vinokurov, and A. P. Grinev, “Methods of start-up and commissioning works of devices for damping hydraulic shocks at wastewater pumping stations,” Voenn. Inzh., No. 2 (20), 30 – 37 (2021).

  9. V. S. Ignatchik, N. A. Sedykh, and A. P. Grinev, “Experimental study of the unevenness of waste water inflow,” Voenn. Inzh., No. 4 (6), 22 – 28 (2017).

  10. A. I. Zhitenev, Yu. A. Kurganov, V. S. Ignatchik, S. V. Sarkisov, and P. V. Vinokurov, “Results of experimental studies of hydraulic shocks arising during the operation of wastewater pumping stations,” Vodosnab. San. Tekhn., No. 11, 55 – 59 (2019).

  11. E. G. Malyavina, D. S. Ivanov, “Determination of heat loss of the underground part of the building by calculating the three-dimensional temperature field of the soil,” Vestn. MGSU, No. 7, 209 – 215 (2011).

  12. E. G. Malyavina, D. S. Ivanov, “Engineering methodology for calculating the heat loss of low-depth basements through enclosing structures on the ground,” AVOK, No. 3, 40 – 44 (2016).

  13. P. I. Dyachek, S. A. Makarevich, and D. G. Livansky, “Formation of the soil temperature field near the building and heat loss through the floors on the ground and embedded parts of the walls,” Santekhn. Otopl. Kondits., No. 11(179), 60 – 65 (2016).

  14. E. G. Malyavina, D. S. Ivanov, and E. A. Mikheeva, “Influence of various factors on the results of calculation of basement heat losses using engineering methods,” Estestv. Tekhn. Nauki, No. 10(88), 403 – 405 (2015).

  15. A. G. Sotnikov, “Thermophysical calculation of heat losses of the underground part of buildings,” AVOK. Vent. Otopl. Kondits. Vozd. Teplosnab. Stroit. Teplofiz., No. 8, 62 – 67 (2010).

  16. O. Brukhanov, A. Rymarov, A. Malysheva, and D. Titkov, “Analysis of heat losses of underground tunnel for engineering utilities with available methods,” MATES Web of inferences, 86, 04028 (2016). https://doi.org/10.1051/matecconf/20168604028

    Article  Google Scholar 

  17. P. I. Dyachek, S. A. Makarevich, “Formation of the temperature field of soils near the building,” Énergetika. Izv. VUZov Énerget. Ob’’ed. SNG, No. 3, 77 – 86 (2007).

  18. K. Zubarev and V. Gagarin, “Heat and moisture transfer in building enclosing structures,” Lect. Notes Netw. Syst., 247, 257 – 266 (2022). https://doi.org/10.1007/978-3-030-80946-1$26.

    Article  Google Scholar 

  19. A. G. Belozerov, Yu. M. Berezovskiy, I. A. Korolev, and S. L. Beletsky, “Study of the temperature regime and thermophysical properties of the soil in the area of the food warehouse of the Russian polar expedition,” Innov. Tekhnol. Proizv. Khran. Mater. Tsenn. Gos. Nuzhd, No. 9(9), 38 – 45 (2018).

  20. E. A. Gnezdilova and E. G. Malyavina, “Influence of thermal insulation of the wall area of the floor on the ground on the heat loss amount,” J. Phys. Conf. Ser., 1614, 012062 (2020). https://doi.org/10.1088/1742-6596/1614/1/012062

    Article  Google Scholar 

  21. D. G. Titkov, “Field studies of the thermal regime of an underground collector for engineering communications,” Privolzh. Nauch. Zh., No. 1(53), 100 – 107 (2020).

  22. V. I. Prohorov, A. G. Rymarov, M. A. Kazakov, and A. R. Kosarev, “Specialized method of calculating heat input from wastewater in the premises of the sewage pumping station,” IOP Conf. Ser. Mater. Sci. Eng., 463(3), 032073. https://doi.org/10.1088/1757-899X/463/3/032073

  23. V. I. Prokhorov, M. A. Razakov, “Modeling of thermal regimes of cooling panels in sewage pumping stations,” Vestn. MGSU, 16(10), 1378 – 1387 (2021). https://doi.org/10.22227/1997-0935.2021.10.1378-1387

  24. L. A. Alikbaeva, I. Sh. Yakubova, A. L. Ryzhkov, A. A. Lavrinova, and A. A. Sidorov, “Hygienic assessment of the operating conditions of urban water disposal facilities,” Gig. Sanit., No. 12(95), 1121 – 1124 (2016). https://doi.org/10.18821/0016-9900-2016-95-12-1121-1124

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Correspondence to M. A. Razakov.

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Translated from Gidrotekhnicheskoe Stroitel’svo, No. 2, February 2023, pp. 42 – 49. https://doi.org/10.34831/EP.2023.64.58.007

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Razakov, M.A. Results on the Radiant Temperature of the Building Envelope at a High-Voltage Wastewater Pumping Station. Power Technol Eng 57, 258–264 (2023). https://doi.org/10.1007/s10749-023-01652-3

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