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Numerical Modeling of Railway Embankment Deformations in Permafrost Regions, Central Yakutia

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Transportation Soil Engineering in Cold Regions, Volume 2

Abstract

In this article, we consider the problem of thermal response of the near-surface ice-rich permafrost to the effects of linear infrastructure and current climate change. First, we emphasize the scientific and practical significance of the study and briefly describe permafrost conditions and related hazards in the study area. Then we present a mathematical model which accounts for the actual process of soil thawing and freezing and consists of two nonlinear equations: heat conduction and moisture transfer. Numerical calculations were made to predict temperature and moisture conditions in the railroad embankment, taking into account solar radiation, snow cover, rainfall infiltration, and evaporation from the surface. The numerical results indicate that moisture migration and infiltration play the primary role in the development of frost heaving and thaw settlement. During winter, the frost-heave extent is monotonously increased due to pore moisture migration to the freezing front. Strong volume expansion (dilatation) is observed near the surface of the active layer with the onset of the warm season and meltwater infiltration. Settlement of the upper layers of the soil occurs in the summer months (June–August) when there is intense evaporation due to drying. Autumn rains stop the process of thaw settlement by increasing the soil moisture. The above processes are repeated cyclically every year. A “frozen core” shifts to the shaded side of the embankment under the influence of variations in the solar radiation. Over time, the total moisture content of the frozen core is increased which increases differential heaving and negatively affects the stress–strain state in the embankment. The quantitative and qualitative characteristics of the processes of frost heaving and thaw settlement are obtained in the annual and long-term cycles.

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References

  1. Kondratyev VG (2001) Active ways to strengthen the foundation of the roadbed on the ever-frozen soils. Zabtrans, Chita

    Google Scholar 

  2. Hao Z, Kanie S, Niu F (2018) The thermal regime evaluation of high-speed railway foundation by mixed FEM. Cold Reg Sci Technol 155:333–342

    Article  Google Scholar 

  3. Permyakov PP, Popov GG, Matveeva MV (2011) Forecast of the dynamics of the “seasonal loosening” of the pipeline. Gazovaya Prom 4:17–19

    Google Scholar 

  4. Varlamov SP (2006) Ground ice contents in the Northern Section of the Tommot-Kerdem Railway Project (Olen Station to Kerdem Station). In: Proceedings of international conference, earth cryosphere assessment: theory, applications and prognosis of alterations, vol 2, 29–31 May 2006. Tyumen, Russia, pp 212–214

    Google Scholar 

  5. Pozin VA, Korolev AA, Naumov MS (2009) The “ice complex” in Central Yakutia as a testing area for railway construction under extreme engineering-geocryological conditions. Inzhenernaya Geologiya 1:15–18

    Google Scholar 

  6. Varlamov SP (2018) Thermal monitoring of railway subgrade in a region of ice-rich permafrost, Yakutia, Russia. Cold Regions Sci Technol 155:184–192

    Article  Google Scholar 

  7. Permyakov PP, Ammosov AP (2003) Mathematical modeling of technogenic pollution in the cryolithozone. Nauka, Novosibirsk

    Google Scholar 

  8. SNiP 2.02.04–88. Foundations on permafrost soils/gosstroy Russia. GUP TsPP, Moscow

    Google Scholar 

  9. Technical Instructions for Eliminating Deeps and Settlement of a Railway Track, Transport, Moscow, 65 pp (1987)

    Google Scholar 

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Acknowledgements

The study was performed as part of Russian Academy of Sciences Project IX.135.2.3, with additional support from the Russian Foundation for Basic Research (Grants 18-55-53041 and 18-41-140008).

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Correspondence to Aleksandr F. Zhirkov .

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Permyakov, P.P., Zhirkov, A.F., Varlamov, S.P., Skryabin, P.N., Popov, G.G. (2020). Numerical Modeling of Railway Embankment Deformations in Permafrost Regions, Central Yakutia. In: Petriaev, A., Konon, A. (eds) Transportation Soil Engineering in Cold Regions, Volume 2. Lecture Notes in Civil Engineering, vol 50. Springer, Singapore. https://doi.org/10.1007/978-981-15-0454-9_11

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  • DOI: https://doi.org/10.1007/978-981-15-0454-9_11

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  • Publisher Name: Springer, Singapore

  • Print ISBN: 978-981-15-0453-2

  • Online ISBN: 978-981-15-0454-9

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