Open Access
Issue
E3S Web Conf.
Volume 264, 2021
International Scientific Conference “Construction Mechanics, Hydraulics and Water Resources Engineering” (CONMECHYDRO - 2021)
Article Number 01051
Number of page(s) 9
Section Ecology, Hydropower Engineering and Modeling of Physical Processes
DOI https://doi.org/10.1051/e3sconf/202126401051
Published online 02 June 2021
  1. Bakiev M.R. Criteria for the reliability of the Ugam irrigation system, International scientific and practical conference, Improving the efficiency, reliability and safety of hydraulic structures, 1, pp. 23–28. (2018) [Google Scholar]
  2. Bandurin M.A. Diagnostics of the technical state and assessment of the residual service Life of water-supplying structures of irrigation systems, Moscow, MGUP, p. 285. (2017) [Google Scholar]
  3. Budikova A.M., Frolov N.N., Chernykh O.N. To the question of the reliability of the foundations of reclamation structures on subsiding soils, Sat. materials of the All-Russian Scientific and technical conference, pp. 147–148, Moscow, (2003) [Google Scholar]
  4. Belyakova S.N. Justification of technical solutions to ensure the operational reliability of hydrotechnical structures in St. Petersburg. Author’s abstract for the co-academic degree of candidate of technical sciences, St. Petersburg, p. 16. (2007) [Google Scholar]
  5. Varyvdin A.V. Determination of the reliability of hydraulic structures and their elements, Collection of materials of the All-Russian Scientific and technical conference, pp. 135–137, Moscow, (2003) [Google Scholar]
  6. Vasilevsky A.G. World experience in the development of hydropower, engineering solutions in the field of dam building and ensuring the safety of hydraulic structures. OJSC VNIIG. g.Hydrotechnical construction, 4, pp. 49–55, (2003) [Google Scholar]
  7. Veksler A.B., Ivashchintsev D.A., Stefanishin D.V. Reliability, social and environmental safety of hydraulic facilities: risk assessment and decision-making. St. Petersburg: OJSC “VNIIG” named after B.E. Vedeneev. pp. 156–159. (2002) [Google Scholar]
  8. Volosukhin V.A. Factors determining the safety of hydraulic structures for water management purposes, Science and security, 3 (12), pp. 7–8, (2014) [Google Scholar]
  9. Dzhumanazarova A. Studies to determine the final value of subsidence of the foundatio of hydraulic structures Agricultural technologies, 1(4), pp. 10–15, Russian Federation, (2019) [Google Scholar]
  10. Dokin D.V. Determination of the size of the zone of subsidence deformations in foundations composed of loess subsidence soils, Materials of the VIII regional scientific and technical conference SevKav GTU, Stavropol. pp. 37–41. (2004) [Google Scholar]
  11. Zasov S.V., Khuzhakulov R. Improving the operational reliability and safety of hydraulic structures of irrigation systems on subsidence soils, Tashkent, pp. 162. (2019) [Google Scholar]
  12. Kaufman B.D. Assessment of the reliability of hydraulic structures under dynamic influences under conditions of the incompleteness of the initial information, Saint Petersburg, pp. 35. (2015) [Google Scholar]
  13. Kosichenko Yu.M. Issues of safety and operational reliability of hydraulic structures for reclamation purposes, Nature improvement, 3, pp. 67–71, (2008) [Google Scholar]
  14. Matveenkov F.V. Development of measures to improve the operational reliability of soil hydraulic structures of III and IV classes, p. 20, Moscow, (2016) [Google Scholar]
  15. Krutov, A., Norkulov, B., Nurmatov, P., Mirzaev, M. Applicability of zero-dimensional equations to forecast nonconservative components concentration in water bodies, 883(1), 2020, DOI: 10.1088/1757-899x/883/1/012064 [Google Scholar]
  16. Robert F. Dam safety: the use of guidance documents for the training of inspector engineers Hydraulic construction, 4 (2003), pp. 43–49, [Google Scholar]
  17. Rustam Xujakulov, Musliddin Zaripov. Research on determination of the structures, In JournalNX-Multidisciplinary Peer Reviewed Journal - Special Issue on “Application of Science for Sustainable Development to Overcome Covid-19 Pandemic” (2020) [Google Scholar]
  18. Khidirov S., Norkulov B., Ishankulov Z., Nurmatov P., Gayur A. Linked pools ulverts facilities. IOP Conference Series: Materials Science and Engineering. 883,(1) pp. (2020), DOI: 10.1088/1757-899x/883/1/012004 [CrossRef] [Google Scholar]
  19. Bazarov D., Markova I., Norkulov B., Isabaev K. Operational efficiency of water damless intake, (2020), DOI: 10.1088/1757-899X/869/7/072051 [Google Scholar]
  20. Xujakulov R. Rahmatov, M., Nabiev, E., and Zaripov, M. Determination of calculating stresses on the depth of loess grounds of hydraulic structures, IOP Conf. Series: Materials Science and Engineering 1030 (2021) DOI: 10.1088/1757-899X/1030/1/0121331 (2021) [Google Scholar]
  21. Bazarov D., Vatin N., Obidov B., and Vokhidov O. Hydrodynamic effects of the flow on the slab of the stand in the presence of cavitation, IOP Conf. Ser. Mater. Sci. Eng. 1030, 012110 (2021) [Google Scholar]
  22. Xujakulov R. Stresses in subsidence bases of flutbet models under the moisturizing conditions, IOP Conf. Series: Materials Science and Engineering 1030 (2021), IOP Publishing DOI: 10.1088/1757-899X/1030/1/012138 1 [Google Scholar]
  23. Sozaev A.A. General characteristics of the state of trough canals of the Chegem irrigation and watering system: a collection of articles of the RIO DSTU.-Nalchik- Makhachkala, pp. 273–275. (2007) [Google Scholar]
  24. Fedorov V.M. The complex of constructive and technological means of restoring and I ncreasing the reliability of the water supply network of irrigation systems, Novocherkassk, pp. 48. (2012) [Google Scholar]
  25. Xujakulov R. Establishment of the degree of moisture and stress values when determining the magnitude of the subsidence of the foundations of hydraulic structures, International Scientific and Technical Conference, National Technical University “Dnipro Polytechnic” (Ukraine), pp. 138–140. (2019) [Google Scholar]
  26. Bazarov D., and Vokhidov O. Extinguishing Excess Flow Energy in Spillway Structures, In book: Proceedings of EECE 2020, LNCE 150, pp. 535–545. (2021) DOI: 10.1007/978-3-030-72404-752 [Google Scholar]
  27. Obidov B., Vokhidov O., Tadjieva D., Kurbanova, U., Isakov A. Hydrodynamic effects on the flow elements of the downstream devices in the presence of cavitation, IOP Conf. Ser. Mater. Sci. Eng. 1030, 012114 (2021) [Google Scholar]
  28. Matyakubov B., Begmatov I., Raimova I. and Teplova G. Factors for the efficient use of water distribution facilities, IOP Conf. Ser. Mater. Sci. Eng. 883, 012025 (2020) [Google Scholar]
  29. Uralov B., Rakhmatov N., Khidirov S., Uljaev F., Raimova I. Hydraulic modes of damless water intake, IOP Conf. Ser. Mater. Sci. Eng. 1030(1), 012123 (2021) [Google Scholar]
  30. Bazarov D., Norkulov B., Vokhidov O., Uljaev F., Ishankulov, Z. Two-dimensional flow movement in the area of protective regulatory structures. IOP Conf. Ser. Mater. Sci. Eng. 890, 012162 (2020) [Google Scholar]

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