LOADS ON SUBMERGED WALLS OF PROTECTIVE STRUCTURES
DOI:
https://doi.org/10.31650/2786-6696-2024-9-105-113Keywords:
protective structure, active soil pressure, quasi-static load from the action of an air wave.Abstract
The intensification of military operations on the territory of Ukraine, which are accompanied by missile attacks and bombing of territories, requires the use of reliable protective structures. Modern codes require the provision of each new building with storage facilities that guarantee the safety of life and health of citizens, so the correct determination of all loads on the structural elements of protective structures is an urgent issue. Taking into acoount the fact that the previous codes were somewhat outdated and had limited access for a long time, a significant event was the adoption in 2023 of new codes for the design of protective structures of civil defence.
The main requirements and recommendations of SBC B.2.2-5:20023 were taken into account when conducting research on determining the loads on buried walls of bomb shelters. Such structures, as we know, perceive a constant load from the lateral pressure of the soil, which during an explosion is supplemented by an episodic load from the action of an air wave.
Modern specialized literature contains rather limited information on scientific research and development in the field of design of protective structures. An actual issue is also the study of the influence of determining factors on the intensity of the load on the walls of buried protective structures and the possibility of its adjustment in order to reduce it.
Taking into account the nature of the distribution of loads on the underground walls of bomb shelters, a dependence was obtained to determine the resulting active pressure and quasi-static load caused by the action of an air wave.
The pressures from the soil and the blast wave at different orientations of the contact wall and for different types of soil environment were studied. The loads in contact of a smooth and rough wall with sandy, sandy and loamy soils with different indicators of physical and mechanical characteristics were considered.
The obtained results indicate a significant influence of the geometric parameters of the wall and the features of the contact soil on the resulting pressure, which can vary depending on the studied factors by 10-20%, which indicates the possibility of reducing the load on protective structures, operating with the considered indicators.
References
[1] DBN V.2.2-5:2023. Zakhysni sporudy tsyvilnoho zakhystu. K.: Ministerstvo rozvytku hromad, terytorii ta infrastruktury Ukrainy, 2023.
[2] M.R. Abir, D. Arumugam, B.D. Sekaran, & T. R. Subash, "Numerical simulation of blast wave propagation in layered soil featuring soil-structure interaction", Proceedings of the 6th ECCOMAS Thematic Conference on Computational Methods in Structural Dynamics and Earthquake Engineering, pp. 4752-4765, 2017. https://doi.org/10.7712/120117.5759.16936.
[3] J. Mandal, M.D. Goel, A.K. Agarwal, "Underground structures subjected to various blast loading scenarios: A scoping review", Archives of Computational Methods in Engineering, vol. 29, no 4, pp. 2491–2512, 2022. https://doi.org/10.1007/s11831-021-09664-w.
[4] S.M. Anas, M. Alam, M. Umair, "Air-blast and ground shockwave parameters, shallow underground blasting, on the ground and buried shallow underground blast-resistant shelters: A review", International Journal of Protective Structures, vol. 13, no 1, pp. 99-139, 2022. https://doi.org/10.1177/20414196211048910.
[5] S.V. Rotko, I.O. Parfentieva, R.V. Pasichnyk, O.A. Uzhehova, O.S. Chapiuk, "Perevirka mitsnosti stin ta osnov ukryttia dlia rozrobky planu rekonstruktsii holovnoho korpusu volynskoi oblasnoi dytiachoi klinichnoi likarni", Suchasni tekhnolohii ta metody rozrakhunkiv u budivnytstvi, no. 19, pp. 162–170, 2023. https://doi.org/10.36910/6775-2410-6208-2023-9(19)-19.
[6] P.U. Dodamani, Y.K. Guruprasad, "Improved blast resistance of existing industrial building adopting global and local retrofit strategies", in Lecture Notes in Civil Engineering, Singapore: Springer Nature Singapore, 2023, pp. 553–563. https://doi.org/10.1007/978-981-19-3371-4_47.
[7] V. Kotsiuruba ta in., "Metodychnyi i naukovyi pidkhid do protsesu rozrakhunku bahatosharovoi pidzemnoi zakhysnoi sporudy", Opir mater. i teor. sporud, no. 107, pp. 159-169, 2021. https://doi.org/10.32347/2410-2547.2021.107.159-169.
[8] E. Toplu, O. Kırtel, "Performance of Base-Isolated RC School Building under Blast Loading", Appl. Sci. (Basel), vol. 13, no. 9, p. 5529, 2023. https://doi.org/10.3390/app13095529.
[9] L. Skoruk, O. Zhuravskyi, "Vyznachennia velychyny navantazhennia na zakhysni sporudy tsyvilnoho zakhystu vid vplyvu udarnoi khvyli zghidno DBN V.2.2 -5:2023", Prostorovyi rozvytok, no. 7, pp. 286–296, 2024. https://doi.org/10.32347/2786-7269.2024.7.286-296.
[10] S.V. Filipchuk, O.I. Nalepa, A.O. Holub, D.Ya. Baran, "Analiz isnuiuchykh arkhitekturno-konstruktyvnykh rishen zakhysnykh fortyfikatsiinykh sporud", Resursoekonomni materialy, konstruktsii, budivli ta sporudy, no. 43, pp. 228–237, 2023. https://doi.org/10.31713/budres.v0i43.25.
[11] Ye.M. Babych, V.D. Kochkarov, S.V. Filipchuk, B.V. Karavan, "Konstruktyvni rishennia ta rozrakhunky elementiv zakhysnykh sporud tsyvilnoho zakhystu z zalizobetonnymy arochnymy pokryttiamy", Resursoekonomichni materialy, konstruktsii, budivnytstva ta sporudy : zbirnyk naukovykh prats. Rivne, Volynski oberehy, 2022, pp.162-176.
[12] V. Doroševas, "Analytical method for analysis of interaction of retaining wall backfilled with soil under explosion loading", Mechanika, vol. 24, no. 1, pp. 74-79, 2018. https://doi.org/10.5755/j01.mech.24.1.19448.
[13] Y. Vynnykov, I. Voitenko, "Influence of the rear verge configuration of the retaining wall and surface of backfill on active pressure of heterogeneous anisotropic soil", Proceedings of the 3rd International Conference on Building Innovations, Springer International Publishing, vol. 181, pp. 415-427, 2022. https://doi.org/10.1007/978-3-030-85043-2_39
[14] I. Voitenko, "Estimation of influence of strength anisotropy in problems of interaction of the retaining wall with heterogeneous foundations", East European scientific journal, vol. 74, no. 8, pp. 21-26, 2016.
[15] DBN V.2.1-10:2018. Osnovy i fundamenty budivel i sporud. Osnovni polozhennia. K.: Minrehionbud Ukrainy, 2018.
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