Structural approach application in the pipeline valves design
Authors: Chinyayev I.R. | Published: 17.06.2025 |
Published in issue: #6(783)/2025 | |
Category: Mechanical Engineering and Machine Science | Chapter: Hydraulic Machines, Vacuum, Compressor Technology, Hydraulic and Pneumatic Systems | |
Keywords: pipeline fittings, structural approach, pipeline system element |
Current economic situation requires strengthening the technological sovereignty of Russia, especially in the critical industries, including oil and gas production, chemical and power industries. Stability of these industries significantly depends on availability and quality of the pipeline fittings, which until recently were imported in large volumes. In order to reduce dependence on the external supply, it becomes critical to develop the domestic production. Ensuring high standards and quality in fittings manufacture requires introduction of the structural approach in the design process making it possible to systematize and coordinate external conditions with the internal capabilities and requirements for the products manufacture. The paper considers features of applying the structural approach to the pipeline fittings design. Analysis of the obtained results makes it possible to conclude that using the structural approach allows reducing the time it takes to master the new types of fittings and establishing the efficient domestic production.
EDN: VFHIKG, https://elibrary/vfhikg
References
[1] Ter-Mateosyants A.I. Peculiarities of expertise of the origin of pipeline valves in order to classify them as products manufactured in Russia. Armaturostroenie, 2021, no. 4, pp. 62–64. (In Russ.).
[2] Murzabaev M.Yu. Application of dual pipeline valves in chemical and petrochemical industries. Armaturostroenie, 2021, no. 6, pp. 24–25. (In Russ.).
[3] Afanasyeva O.V. Issues of import substitution of pipeline valves in the chemical industry. Armaturostroenie, 2024, no. 1, pp. 20–24. (In Russ.).
[4] Panteleev A.S. Current trends and approaches to the manufacture of pipeline valves. Fundamentalnye osnovy mekhaniki, 2023, no. 11, pp. 106–113, doi: https://doi.org/10.26160/2542-0127-2023-11-106-113 (in Russ.).
[5] Zhang G., Zhang H.T., Wu Z.Y. et al. Experimental studies of cavitation evolution through a butterfly valve at different regulation conditions. Exp. Fluids, 2024, vol. 65, no. 4, doi: https://doi.org/10.1007/s00348-023-03743-3
[6] Shumkin A.V. Organization of the control system for maintenance of pipeline fittings of main gas pipelines. Sovremennye naukoemkie tekhnologii [Modern High Technologies], 2022, no. 8, pp. 103–108, doi: https://doi.org/10.17513/snt.39274 (in Russ.).
[7] Fominykh A.V., Chinyaev I.R., Shanaurin A.L. Sposob snizheniya kavitatsii v reguliruyushchey truboprovodnoy armature [Method of reducing cavitation in control pipeline valves]. Patent RU 2819248. Appl. 19.07.2023, publ. 15.05.2024. (In Russ.).
[8] Zaslavskiy G.A., Ryazanov V.A., Chinyaev I.R. et al. Zaporno-reguliruyushchaya zadvizhka [Shutoff and control gate valve]. Patent RU 2464470. Appl. 29.06.2010, publ. 20.10.2012. (In Russ.).
[9] Zaslavskiy G.A., Ryazanov V.A., Sukhov S.A. et al. Zaporno-reguliruyushchee ustroystvo [Shutoff-control device]. Patent RU 2586958. Appl. 21.11.2014, publ. 10.06.2016. (In Russ.).
[10] Makhov A.A., Muftakhov V.Z., Fominykh A.V. et al. Shibernoe zaporno-reguliruyushchee ustroystvo [Shut-off and regulating device]. Patent RU 217661 RF. Appl. 27.04.2022, publ. 11.04.2023. (In Russ.).
[11] Akopdzhanyan S.G. Advantages of using hydraulic actuators to control part-turn valves. Armaturostroenie, 2021, no. 3, pp. 48–49. (In Russ.).
[12] Tikhonenko K.A. Development of software applications for selection and calculation of reliability of pipeline fittings. Vestnik TGTU [Transactions of the TSTU], 2023, vol. 29, no. 4, pp. 562–573. (In Russ.).
[13] Abdallah H.K., Ben-Mansour R., Li S. Numerical study of erosion phenomena with the presence of cavitation at deflector jet servo-valve. Arab. J. Sci. Eng., 2024, vol. 49, no. 2, pp. 2797–2811, https://doi.org/10.1007/s13369-023-08427-y
[14] Gao G., Guo S., Li D. A review of cavitation erosion on pumps and valves in nuclear power plants. Materials, 2024, vol. 17, no. 5, art. 1007, doi: https://doi.org/10.3390/ma17051007
[15] Xin G.Z., Yue Y., Wu J. et al. The flow and cavitation characteristics of cage-type control valves. Eng. Appl. Comput. Fluid Mech., 2021, vol. 15, no. 1, pp. 951–963, doi: https://doi.org/10.1080/19942060.2021.1932604
[16] Qiu T., Yang L., Zhang J. et al. Investigation of valve seat cone angle on small opening direct-acting relief valve cavitation noise. Machines, 2024, vol. 12, no. 7, art. 434, doi: https://doi.org/10.3390/machines12070434
[17] Kramsakov D.E. A new approach to shut-off and control pipe valves design. Vestnik Kurganskoy GSKhA, 2024, no. 2, pp. 53–61. (In Russ.).
[18] Budanov A.V. Determination of hydraulic characteristics of pipeline fittings using finite element analysis. Sovremennye tekhnologii. Sistemnyy analiz. Modelirovanie [Modern Technologies. System Analysis. Modeling], 2023, no. 3, pp. 181–189. (In Russ.).
[19] Skryabin V.A. Improvement of technology and equipment for renewal of pipe fittings. Remont. Vosstanovlenie. Modernizatsiya [Repair, Reconditioning, Modernization], 2024, no. 8, pp. 17–26. (In Russ.).
[20] Shpakov O.N. Industrial pipeline valves — the basic device in pipeline systems. Armaturostroenie, 2021, no. 5, pp. 30–37. (In Russ.).
[21] Krivtsov Yu.S. Estimation of fracture resistance capability of cryogenic steels at the choice of materials for parts of pipeline valves. Truboprovodnaya armatura i oborudovanie, 2021, no. 4, pp. 43–45. (In Russ.).