Analytical Model of Interaction of an Oil Pipeline with a Support of an Overpass Built in a Mountainous Area
Abstract
:1. Introduction
2. Materials and Methods
2.1. Modeling the Interaction of the Oil Pipeline with the Rigid Support
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- the mutual angle of the rotation of the cut faces is equal to zero:
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- the mutual linear displacement of the cut faces is equal to zero:
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- main coefficients and free terms
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- collateral coefficients
2.2. The Method to Determine the Reaction in the Intermediate Support of the Overpass of the Oil Pipeline
3. Results and Discussion
3.1. The Formula to Determine the Additional Hoop Stresses in the Oil Pipeline, Which Arise Due to the Interaction of the Pipe with the Support
3.2. Analysis of the Strength of the Overpass of the Oil Pipeline in the Contact Area with the Intermediate Support
4. Conclusions
- An analytical model of the interaction of the overpass of the pipeline with the rigid support has been developed. The developed model makes it possible to determine additional internal loads in the pipe and displacement of its middle surface, which occur due to the contact of the pipe with the support.
- The method of determining the reaction in the intermediate support of the overpass of the oil pipeline has been developed, which considers the influence on the reaction value of the properties of the soil base of the underground sections of the overpass and the possible presence of the installation gap in the support node.
- The analytical dependence was obtained to determine the additional hoop stresses in the oil pipeline, which arise due to the contact of the pipe with the support. The unambiguous relationship between the maximum additional hoop stress and the reaction in the support node is established.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- IEA. World Energy Outlook. Flagship Report—2022; International Energy Agency: Paris, France, 2022; Available online: https://www.iea.org/reports/world-energy-outlook-2022 (accessed on 9 May 2023).
- Simão, M.; Mora-Rodriguez, J.; Ramos, H.M. Design Criteria for Suspended Pipelines Based on Structural Analysis. Water 2016, 8, 256. [Google Scholar] [CrossRef]
- Mohamed Azzam, M. Failure Analysis of Pipelines in the Oil and Gas Industry. In Pipeline Engineering—Design, Failure, and Management; IntechOpen: London, UK, 2023. [Google Scholar] [CrossRef]
- Popescu, C.; Gabor, M.R. Quantitative Analysis Regarding the Incidents to the Pipelines of Petroleum Products for an Efficient Use of the Specific Transportation Infrastructure. Processes 2021, 9, 1535. [Google Scholar] [CrossRef]
- Dai, L.; Wang, D.; Wang, T.; Feng, Q.; Yang, X. Analysis and Comparison of Long-Distance Pipeline Failures. J. Pet. Eng. 2017, 2017, 3174636. [Google Scholar] [CrossRef]
- Xie, M.; Tian, Z. A review on pipeline integrity management utilizing in-line inspection data. Eng. Fail. Anal. 2018, 92, 222–239. [Google Scholar] [CrossRef]
- Velychkovych, A.S.; Andrusyak, A.V.; Pryhorovska, T.O.; Ropyak, L.Y. Analytical model of oil pipeline overground transitions, laid in mountain areas. Oil Gas Sci. Technol. 2019, 74, 65. [Google Scholar] [CrossRef]
- Kryzhanivs’kyi, E.I.; Rudko, V.P.; Shats’kyi, I.P. Estimation of admissible loads upon a pipeline in the zone of sliding ground. Mater. Sci. 2004, 40, 547–551. [Google Scholar] [CrossRef]
- Amandi, K.U.; Diemuodeke, E.O.; Briggs, T.A. Model for remaining strength estimation of a corroded pipeline with interacting defects for oil and gas operations. Cogent Eng. 2019, 6, 1663682. [Google Scholar] [CrossRef]
- Bembenek, M.; Mandziy, T.; Ivasenko, I.; Berehulyak, O.; Vorobel, R.; Slobodyan, Z.; Ropyak, L. Multiclass Level-Set Segmentation of Rust and Coating Damages in Images of Metal Structures. Sensors 2022, 22, 7600. [Google Scholar] [CrossRef]
- Bi, A.; Huang, S.; Zhang, Y.; Gao, Y. Reliability Analysis of Oil and Gas Pipelines Based on Step-Down-Stress Testing in Corrosive Environments. Math. Probl. Eng. 2022, 2022, 4055779. [Google Scholar] [CrossRef]
- Dutkiewicz, M.; Shatskyi, I.; Martsynkiv, O.; Kuzmenko, E. Mechanism of Casing String Curvature Due to Displacement of Surface Strata. Energies 2022, 15, 5031. [Google Scholar] [CrossRef]
- Shats’kyi, I.P.; Struk, A.B. Stressed state of pipeline in zones of soil local fracture. Strength Mater. 2009, 41, 548–553. [Google Scholar] [CrossRef]
- Dutkiewicz, M.; Dalyak, T.; Shatskyi, I.; Venhrynyuk, T.; Velychkovych, A. Stress Analysis in Damaged Pipeline with Composite Coating. Appl. Sci. 2021, 11, 10676. [Google Scholar] [CrossRef]
- Shatskii, I.P.; Perepichka, V.V. Shock-wave propagation in an elastic rod with a viscoplastic external resistance. J. Appl. Mech. Tech. Phys. 2013, 54, 1016–1020. [Google Scholar] [CrossRef]
- Shatskyi, I.; Vytvytskyi, I.; Senyushkovych, M.; Velychkovych, A. Modelling and improvement of the design of hinged centralizer for casing. IOP Conf. Ser. Mater. Sci. Eng. 2019, 564, 12073. [Google Scholar] [CrossRef]
- Bazaluk, O.; Dubei, O.; Ropyak, L.; Shovkoplias, M.; Pryhorovska, T.; Lozynskyi, V. Strategy of Compatible Use of Jet and Plunger Pump with Chrome Parts in Oil Well. Energies 2022, 15, 83. [Google Scholar] [CrossRef]
- Shats’kyi, I.P. Closure of a longitudinal crack in a shallow cylindrical shell in bending. Mater. Sci. 2005, 41, 186–191. [Google Scholar] [CrossRef]
- Panevnik, D.A.; Velichkovich, A.S. Assessment of the stressed state of the casing of the above-bit hydroelevator. Neft. Khozyaystvo Oil Ind. 2017, 1, 70–73. [Google Scholar]
- Velichkovich, A.S. Shock Absorber for Oil-Well Sucker-Rod Pumping Unit. Chem. Petrol. Eng. 2005, 41, 544–546. [Google Scholar] [CrossRef]
- Grydzhuk, J.; Chudyk, I.; Velychkovych, A.; Andrusyak, A. Analytical estimation of inertial properties of the curved rotating section in a drill string. East. Eur. J. Enterp. Technol. 2019, 1, 6–14. [Google Scholar] [CrossRef]
- Velychkovych, A.; Petryk, I.; Ropyak, L. Analytical study of operational properties of a plate shock absorber of a sucker-rod string. Shock. Vib. 2020, 2020, 3292713. [Google Scholar] [CrossRef]
- Wu, N.; Liu, Y.; Tong, G.; Dai, J. Stability Analysis of Multispan Pipeline Embedded in Temperature-Dependent Matrix. Math. Probl. Eng. 2021, 2021, 6153291. [Google Scholar] [CrossRef]
- Han, B.-J.; Jiang, Y.-S.; Wang, Z.; Gong, D.; Jiang, H.; Jiang, P. Analysis of the Risk Path of the Pipeline Corridor Based on System Dynamics. Shock. Vib. 2021, 2021, 5529642. [Google Scholar] [CrossRef]
- Velychkovych, A.; Ropyak, L.; Dubei, O. Strength Analysis of a Two-Layer PETF-Concrete Column with Allowance for Contact Interaction between Layers. Adv. Mater. Sci. Eng. 2021, 2021, 4517657. [Google Scholar] [CrossRef]
- Shatskyi, I.; Perepichka, V. Problem of dynamics of an elastic rod with decreasing function of elastic-plastic external resistance. In Dynamical Systems in Applications, Proceedings of the DSTA 2017, Lodz, Poland, 11–14 December 2017; Awrejcewicz, J., Ed.; Springer: Cham, Switzerland, 2018; Volume 249, pp. 335–342. [Google Scholar] [CrossRef]
- Shatskyi, I.; Velychkovych, A. Analytical Model of Structural Damping in Friction Module of Shell Shock Absorber Connected to Spring. Shock. Vib. 2023, 2023, 4140583. [Google Scholar] [CrossRef]
- Dutkiewicz, M.; Velychkovych, A.; Shatskyi, I.; Shopa, V. Efficient Model of the Interaction of Elastomeric Filler with an Open Shell and a Chrome-Plated Shaft in a Dry Friction Damper. Materials 2022, 15, 4671. [Google Scholar] [CrossRef] [PubMed]
- Xie, M.; Wang, Y.; Xiong, W.; Zhao, J.; Pei, X. A Crack Propagation Method for Pipelines with Interacting Corrosion and Crack Defects. Sensors 2022, 22, 986. [Google Scholar] [CrossRef]
- Vanaei, H.R.; Eslami, A.; Egbewande, A. A review on pipeline corrosion, in-line inspection (ILI), and corrosion growth rate models. Int. J. Press. Vessel. Pip. 2017, 149, 43–54. [Google Scholar] [CrossRef]
- Du, J.; Wang, H.; Wang, S.; Song, X.; Wang, J.; Chang, A. Fatigue damage assessment of mooring lines under the effect of wave climate change and marine corrosion. Ocean. Eng. 2020, 206, 107303. [Google Scholar] [CrossRef]
- Jimenez-Martinez, M. Harbor and coastal structures: A review of mechanical fatigue under random wave loading. Heliyon 2021, 7, E08241. [Google Scholar] [CrossRef]
- Velázquez, J.C.; Hernández-Sánchez, E.; Terán, G.; Capula-Colindres, S.; Diaz-Cruz, M.; Cervantes-Tobón, A. Probabilistic and Statistical Techniques to Study the Impact of Localized Corrosion Defects in Oil and Gas Pipelines: A Review. Metals 2022, 12, 576. [Google Scholar] [CrossRef]
- Shats’kyi, I.P.; Makoviichuk, M.V. Analysis of the limiting state of cylindrical shells with cracks with regard for the contact of crack lips. Strength Mater. 2009, 41, 560–565. [Google Scholar] [CrossRef]
- Rong, L.; Tie, Z.; Wu, X.J.; Wang, C.H. Crack closure effect on stress intensity factors of an axially and a circumferentially cracked cylindrical shell. Int. J. Fract. 2004, 125, 227–248. [Google Scholar] [CrossRef]
- Shatskii, I.P.; Makoviichuk, N.V. Effect of closure of collinear cracks on the stress-strain state and the limiting equilibrium of bent shallow shells. J. Appl. Mech. Tech. Phys. 2011, 52, 464–470. [Google Scholar] [CrossRef]
- Dovbnya, K.M.; Hryhorchuk, Y.V. Stressed state of a shell of double curvature with two collinear cracks under bending. J. Math. Sci. 2016, 212, 98–105. [Google Scholar] [CrossRef]
- Shats’kyi, I.P.; Makoviichuk, M.V. Contact interaction of crack lips in shallow shells in bending with tension. Mater. Sci. 2005, 41, 486–494. [Google Scholar] [CrossRef]
- He, M.; Zhentai, Z.; Shi, F.; Guo, D.; Yu, J. A novel crack healing technique in a low carbon steel by cyclic phase transformation heat treatment: The process and mechanism. Mater. Sci. Eng. A 2020, 772, 138712. [Google Scholar] [CrossRef]
- Prysyazhnyuk, P.; Molenda, M.; Romanyshyn, T.; Ropyak, L.; Romanyshyn, L.; Vytvytskyi, V. Development of a hardbanding material for drill pipes based on high-manganese steel reinforced with complex carbides. Acta Montan. Slovaca 2022, 27, 685–696. [Google Scholar] [CrossRef]
- Bembenek, M.; Prysyazhnyuk, P.; Shihab, T.; Machnik, R.; Ivanov, O.; Ropyak, L. Microstructure and Wear Characterization of the Fe-Mo-B-C—Based Hardfacing Alloys Deposited by Flux-Cored Arc Welding. Materials 2022, 15, 5074. [Google Scholar] [CrossRef]
- Xu, P.; Zhang, M.; Lin, Z.; Cao, Z.; Chang, X. Additional Stress on a Buried Pipeline under the Influence of Coal Mining Subsidence. Adv. Civ. Eng. 2018, 2018, 3245624. [Google Scholar] [CrossRef]
- Feng, Q.; Li, R.; Zhang, H. Modeling and Calculation of Dent Based on Pipeline Bending Strain. J. Sens. 2016, 2016, 8126214. [Google Scholar] [CrossRef]
- Wang, X.; Li, H.; Li, B.; Sheng, J.; Zhao, J.; Ding, Y.; Lu, D. Simulation Analysis of External Damage and Repair of the Gas Transmission Pipeline. Adv. Mater. Sci. Eng. 2022, 2022, 3978649. [Google Scholar] [CrossRef]
- Li, X.; Wu, Q.; Jin, H.; Kan, W. A New Stress Monitoring Method for Mechanical State of Buried Steel Pipelines under Geological Hazards. Adv. Mater. Sci. Eng. 2022, 2022, 4498458. [Google Scholar] [CrossRef]
- Zhang, W.; Zhang, J.; Li, X.; Chen, F.; Guo, J.; Li, W.; Cai, J. Energy pipeline strength evaluation and reliability technology based on Fuzzy deep learning network algorithm. Energy Rep. 2022, 8, 5129–5136. [Google Scholar] [CrossRef]
- Witek, M. Structural Integrity of Steel Pipeline with Clusters of Corrosion Defects. Materials 2021, 14, 852. [Google Scholar] [CrossRef] [PubMed]
- Tan, N.; Zhou, L.; Zheng, W.; Song, H.; Sun, Z.; Wang, Z.; Wang, G.; Wang, G.; Zhang, L.; Zhou, X. Using Finite Element Method for Stress-Strain Evaluation of Commonly Used Buried Pipelines in Fault. Energies 2022, 15, 1655. [Google Scholar] [CrossRef]
- Liu, X.; Sun, Z.; Zhu, J.; Fang, Y.; He, Y.; Pan, Y. Study on Stress-Strain Characteristics of Pipeline-Soil Interaction under Ground Collapse Condition. Geofluids 2022, 2022, 5778761. [Google Scholar] [CrossRef]
- Li, L.; Ma, H.; Jing, H. Vertical Displacement Monitoring and Safety Evaluation of Oil Pipelines in Permafrost Region. J. Geosci. Environ. Prot. 2018, 6, 247–256. [Google Scholar] [CrossRef]
- Abushanab, W. Oil Transmission Pipelines Condition Monitoring Using Wavelet Analysis and Ultrasonic Techniques. Engineering 2013, 5, 551–555. [Google Scholar] [CrossRef]
- Lee, D.; Shin, S.; Hoan Doan, Q. Real-time robust assessment of angles and positions of nonscaled steel outrigger structure with Maxwell-Mohr method. Constr. Build. Mater. 2018, 186, 1161–1176. [Google Scholar] [CrossRef]
- Dubei, O.Y.; Tutko, T.F.; Ropyak, L.Y.; Shovkoplias, M.V. Development of Analytical Model of Threaded Connection of Tubular Parts of Chrome-Plated Metal Structures. Metallofiz. Noveishie Tekhnol. 2022, 44, 251–272. [Google Scholar] [CrossRef]
- Kychma, A.O.; Predko, R.Y. Estimation of residual stresses for multi-layer circumferential welds of oil and gas pipelines. Diagnostyka 2019, 20, 11–18. [Google Scholar] [CrossRef]
- Banakhevych, Y.V.; Dragilev, A.V.; Kychma, A.O. Diagnostics of the Stress-Strain State of Multilayer Annular Welded Joints of Pipelines. Mater. Sci. 2014, 50, 217–223. [Google Scholar] [CrossRef]
- Shats’kyi, I.P.; Shopa, V.M.; Velychkovych, A.S. Development of full-strength elastic element section with open shell. Strength Mater. 2021, 53, 277–282. [Google Scholar] [CrossRef]
- Tutko, T.; Dubei, O.; Ropyak, L.; Vytvytskyi, V. Determination of Radial Displacement Coefficient for Designing of Thread Joint of Thin-Walled Shells. In Advances in Design, Simulation and Manufacturing IV, Proceedings of the 4th International Conference on Design, Simulation, Manufacturing: The Innovation Exchange, DSMIE 2021, Lviv, Ukraine, 8–11 June 2021; Ivanov, V., Trojanowska, J., Pavlenko, I., Zajac, J., Peraković, D., Eds.; Lecture Notes in Mechanical Engineering; Springer: Cham, Switzerland, 2021; pp. 153–162. [Google Scholar] [CrossRef]
- Singh, R. Pipeline Integrity Handbook: Management and Risk Evaluation; Elsevier Science: Amsterdam, The Netherlands, 2017. [Google Scholar]
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Dutkiewicz, M.; Velychkovych, A.; Andrusyak, A.; Petryk, I.; Kychma, A. Analytical Model of Interaction of an Oil Pipeline with a Support of an Overpass Built in a Mountainous Area. Energies 2023, 16, 4464. https://doi.org/10.3390/en16114464
Dutkiewicz M, Velychkovych A, Andrusyak A, Petryk I, Kychma A. Analytical Model of Interaction of an Oil Pipeline with a Support of an Overpass Built in a Mountainous Area. Energies. 2023; 16(11):4464. https://doi.org/10.3390/en16114464
Chicago/Turabian StyleDutkiewicz, Maciej, Andrii Velychkovych, Andriy Andrusyak, Ivan Petryk, and Andrii Kychma. 2023. "Analytical Model of Interaction of an Oil Pipeline with a Support of an Overpass Built in a Mountainous Area" Energies 16, no. 11: 4464. https://doi.org/10.3390/en16114464
APA StyleDutkiewicz, M., Velychkovych, A., Andrusyak, A., Petryk, I., & Kychma, A. (2023). Analytical Model of Interaction of an Oil Pipeline with a Support of an Overpass Built in a Mountainous Area. Energies, 16(11), 4464. https://doi.org/10.3390/en16114464