Communications - Scientific Letters of the University of Zilina 2022, 24(3):D141-D149 | DOI: 10.26552/com.C.2022.3.D141-D149

Energy-Saving Thermal Stabilization System and Assessment of Temperature Loadings of a Bridge Deck Pavement

Sergey A. Kostenko ORCID...*, Aleksandr A. Piskunov ORCID..., Nikita A. Ganin ORCID..., Galina A. Emelianova
Federal State Autonomous Educational Institution of Higher Education, Russian University of Transport (MIIT), Moscow, Russia

To improve the general traffic safety in conditions of winter ice at traffic interchanges and to extend the overall service life of the roadway, it is proposed to use energy-saving thermal stabilization of a bridge deck pavement by transferring the low-temperature geothermal energy by heat pumps. The practical and computational parts of the pilot plant work are demonstrated and discussed. In order to analyze the need to use additional thermal joints, computer simulation was performed in the LIRA-CAD-2018 software package with subsequent extrapolation to a real bridge span.

Keywords: de-icing, thermal stabilization of the roadway, span, heat pumps, computer simulation, thermal joints, ESG-investing

Received: February 10, 2022; Accepted: April 25, 2022; Prepublished online: June 1, 2022; Published: July 1, 2022  Show citation

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Kostenko, S.A., Piskunov, A.A., Ganin, N.A., & Emelianova, G.A. (2022). Energy-Saving Thermal Stabilization System and Assessment of Temperature Loadings of a Bridge Deck Pavement. Communications - Scientific Letters of the University of Zilina24(3), D141-149. doi: 10.26552/com.C.2022.3.D141-D149
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References

  1. RUSSELL, G. A. Anti-icing coatings and methods - Michigan Tech Patents, 122 [online]. 2014. Available from: https://digitalcommons.mtu.edu/patents/122
  2. SELL, S., REHFELD, N. Anti-icing coatings and de-icing technical approaches and status - Winterwind Ostersund [online]. 2013. Available from: https://windren.se/WW2013/52_Sell_Stephan_Winterwind_2013.pdf
  3. BRODARD, P.-A. Surface condition management. A global concept for winter maintenance operations. In: 12th International Road Weather Conference SIRWEC 2004: proceedings. 2004. ISBN 3-88148-399-3, ISSN 0072-4122.
  4. GLUSHKO, A. N., BESSARABOV, A. M., ZAREMBA, G. A., GLADKAJA, A.A., STOYANOV, O.V. Systemic studies of the anti-icing agents melting ability / Sistemnye issledovaniya plavyashchej sposobnosti protivogololednyh reagentov (in Russian). Bulletin of Kazan Technological University / Vestnik Kazanskogo Tekhnologicheskogo Universiteta. 2015, 18(1), p. 119-122. ISSN 2072-6007.
  5. CASEY, P. C., ALWAN, C. W., KLINE, C. F. Impacts of using salt and salt brine for roadway deicing. Review prepared for Idaho transportation department research program [online]. 2014. Available from: https://professionalsnowfightersassociation.org/wp-content/uploads/2019/04/saltimpacts-copy.pdf
  6. TRUJILLO-GONZALEZ, J. M., TORRES-MORA, A. M. Heavy metal accumulation related to population density in road dust samples taken from urban sites under different land uses. Science of the Total Environment [online]. 2016, 553, p. 636-642. ISSN 0048-9697. Available from: https://doi.org/10.1016/j.scitotenv.2016.02.101 Go to original source...
  7. MALYSHEVA, A. G., SHELEPOVA, O. V., VODYANOVA, M. A., DONERIAN, L. G., USHAKOVA, O. V., YUDIN, S. M. Ecological and hygienic problems of the application of anti-icing agents in a large metropolis (for example, the territory of Moscow) / Ekologo-gigienicheskie problemy primeneniya protivogololyodnyh reagentov v usloviyah krupnogo megapolisa (na primere territorii goroda Moskvy) (in Russian). Hygiene and Sanitation. 2018, 97(11), p. 1032-1037. ISSN 2412-0650. Available from: http://dx.doi.org/10.18821/0016-9900-2018-97-11-1032-37 Go to original source...
  8. PAYNE, B. F. Oil and gas well brines for dust control on unpaved roads - part 1: ineffectiveness. European Scientific Journal [online]. 2018, 14(27), p. 398-427. ISSN 1857-7881, eISSN 1857-7431. Available from: https://doi.org/10.19044/esj.2018.v14n30p166 Go to original source...
  9. MIKHEYEV, M. A., MIKHEYEVA, I. M. Basics of heat transfer / Osnovy teploperedachi (in Russian). Moscow: Energiya, 1977.
  10. PASCAL, H. A Nonlinear model of heat conduction. Journal of Physics A: Mathematical and General. 1992, 25(4), p. 939-949. ISSN 0305-4470, eISSN 1361-6447. Available from: https://doi.org/10.1088/0305-4470/25/4/029 Go to original source...
  11. GURVICH, L. V., VEYTS, I. V., ALCOCK, C. B. Thermodynamic properties of individual substances. N.Y.: Hemisphere Pub. Corp., 1989. ISBN 9780891165330.
  12. VIALLON-GALINIER, L., HAGENMULLER, P., LAFYSSE, M. Forcing and evaluating detailed snow cover models with stratigraphy observations. Cold Regions Science and Technology [online]. 2020, 180, 103163. ISSN 0165-232X. Available from: https://doi.org/10.1016/j.coldregions.2020.103163 Go to original source...
  13. LIRA-CAD-2018 - GK LiraLand (in Russian) [online]. Available from: https://www.liraland.ru/news/update/3987/
  14. PADMAVATHI, D. A. Potential energy curves and material properties. Materials Sciences and Applications [online]. 2011, 02(02), p. 97-104. Available from: https://doi.org/10.4236/msa.2011.22013 Go to original source...
  15. DMITRIYEV, I. I. Geosynthetic materials in road construction / Geosinteticheskiye materialy v dorozhnom stroitelstve (in Russian). Construction of Unique Buildings and Structures / Stroitelstvo Unikalnykh Zdaniy i Sooruzheniy [online]. 2016, 10(49), p. 35-58. ISSN 2304-6295. Available from: https://unistroy.spbstu.ru/userfiles/files/2016/10(49)/3_dmitriev_49.pdf
  16. KOSTENKO, S. A, PISKUNOV, A. A., GANIN, N. A. Organization of laying an underground heat exchanger circuit when using a low-temperature geothermal system for thermal stabilization of the roadway at multi-level transport junctions / Organizatsiya ukladki podzemnogo kontura teploobmennika pri ispol'zovanii nizkotemperaturnoy geotermal'noy sistemy dlya termostabilizatsii dorozhnogo polotna na mnogourovnevykh transportnykh razvyazkakh (in Russian). Innovation and Investments / Innovatsii i Investitsii. 2021, 3, p. 307-313. ISSN 2307-180X.

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