ISSN (Online): 2812-9709
Vol.3, No.3, 2024: pp.91-99
Process modeling of increasing reliability of assembly responsible connections
Authors:
Nataliia Vodolazskaya1
Received: 29 May 2024
Revised: 3 September 2024
Accepted: 23 September 2024
Published: 30 September 2024
Abstract:
Questions of increased reliability of responsible connections at a stage of their assembly are considered in the paper. This step provides the necessary operational characteristics of outputs. The special place among such responsible connections is occupied with the group threaded connections. Their assembly technology provides reception in fixing details normalized relatively identical axial efforts in regular intervals loading a sealing layer. The presented work results of experimental research on the group threaded connection assemblage process are given. Alternate calculations of efforts change in tightened pairs of threaded connections and their graphic interpretation are presented. An algorithmic calculation model of overload factors for fixing details has been developed. Recommendations about the use of the received settlement dependences, taking into account comparative theoretical and experimental data on assembly of group threaded connection, are offered.
Keywords:
Assembly technology, Flange joint, Elements of a threaded connection, Reliability, Industries, Machines
References:
[1] P. Dašić, Reliability of technical systems: Selected scientific-professional papers. SaTCIP Publisher Ltd, Vrnjačka Banja, Serbia, 2019, p.308 (in Serbian)
[2] P. Dašić, A. Natsis, G. Petropoulos, Models of reliability for cutting tools: Examples in manufacturing and agricultural engineering. Strojniški vestnik – Journal of Mechanical Engineering, 54(2), 2008: 122-130.
[3] E. Quatrini, F. Costantino, G.D. Gravio, R. Patriarca, Condition-Based Maintenance – An Extensive Literature Review. Machines, 8(2), 2020: 31. https://doi.org/10.3390/machines8020031
[4] G. Sun, Y. Lim J F. Yu, J. Zhang, L. Dong, An Assembly Process Model Involved Resource for Complex Products. Applied Mechanics and Materials, 268-270, 2012: 845-850. https://doi.org/10.4028/www.scientific.net/amm.268-270.845
[5] N. Vodolazskaya, Types and ways of modernization in a context of the international experience. Virtual Economics, 2(1), 2019: 81-93. https://doi.org/10.34021/ve.2019.02.01(5)
[6] D. Judt, C. Lawson, H. Lockett, Experimental investigation into aircraft system manual assembly performance under varying structural component orientations. Proceedings of the Institution of Mechanical Engineers. Part B: Journal of Engineering Manufacture, 234(4), 2020: 840-855. https://doi.org/10.1177/0954405419883047
[7] H. Meeus, J. Fiszer, G.V.D. Velde, B. Verrelst, W. Desmet, P. Guillaume, D. Lefeber, Dynamic Performance of a Squeeze Film Damper with a Cylindrical Roller Bearing under a Large Static Radial Loading Range. Machines, 7(1), 2019:14. https://doi.org/10.3390/machines7010014
[8] X.C. Zhang, X. Zhang, J. Chen, Study on the Inspection Method of Gas Valve’s External Taper Screw Thread Based on Image Domain. Advanced Materials Research, 189-193, 2011:4195-4200.
https://doi.org/10.4028/www.scientific.net/amr.189-193.4195
[9] P. Dašić, Determination of reliability of ceramic cutting tools on the basis of comparative analysis of different functions distribution. International Journal of Quality & Reliability Management, 18(4), 2001: 433-446.
https://doi.org/10.1108/02656710110387012
[10] N.V. Vodolazskaya, Expansion of the loading range of elements of the technological assembly system. Assembling in mechanical engineering and instrument-making, (1), 2023:7-11.
[11] A. Drozdov, V. Stepanov, Mechanization of technological processes assembly of threaded joints. Advances in Intelligent Systems and Computing, 692, 2018: 750-759. https://doi.org/10.1007/978-3-319-70987-1_79
[12] S.S. Kvon, V.Y. Kulikov, Y.P. Shcherbakova, S.K. Arinova, Effect of inoculants introducing on improving ingot structure. Metallurgija, 58(3-4), 2019: 315-318.
[13] N.V. Vodolazskaya, O.A. Sharaya, Modifying of the Surface of Products from Cast Iron as the Element of Production Modernization. Solid State Phenomena, 299, 2020: 588-593. https://doi.org/10.4028/www.scientific.net/SSP.299.588
[14] V.A. Kuznetsov, A.V. Smirnov, D.A. Buvakin, The Study of the Characteristics of Metallic Powders after Electroerosion Dispersion. Solid State Phenomena, 284, 2018: 696-700. https://doi.org/10.4028/www.scientific.net/SSP.284.696
[15] N.V. Vodolazskaya, O.A. Sharaya, Wear resistance of cast iron parts due to modification of surface layer. Journal of Advanced Research in Technical Science, (18), 2020: 33-36. https://doi.org/10.26160/2474-5901-2020-18-33-36
[16] V. Gutarevych, N. Vodolazskaya, Е. Jakupovic, D. Mirjanic, Research on the Influence of Dynamic Load on Suspended Monorail. Applied Mechanics and Мaterials, 806, 2016: 23-29. https://doi.org/10.4028/www.scientific.net/AMM.806.23
[17] E.K. Chanda, B. Besa, A computer simulation model of a monorail-based mining system for decline development. International Journal of Mining, Reclamation and Environment, 25(1), 2011: 52-68.
https://doi.org/10.1080/17480930.2010.503386
[18] L. Tiejun, L. Zhaoyang, Z. Zhaoyang, B. Xiaomin, Z. Qiang, Failure analysis of long round thread in horizontal well casing under multi-axis loading. E3S Web Conference, 165, 2020: 01007. https://doi.org/10.1051/e3sconf/202016501007
[19] G. Urbikain, A. Alvarez, L.N.L. de Lacalle. M. Arsuaga, M.A. Alonso, F. Veiga, A Reliable Turning Process by the Early Use of a Deep Simulation Model at Several Manufacturing Stages. Machines, 5(2), 2017: 15.
https://doi.org/10.3390/machines5020015
[20] N.V. Vodolazskaya, Improving the technology of the process of controlled assembly of threaded connections. Assembling in mechanical engineering and instrument-making, (12), 2019: 564-568. (in Russian)
[21] A. Gaydamaka, Y. Muzikin, V. Klitnoi, Y. Basova, S. Dobrotvorskiy, Selecting the Method for Pre-tightening Threaded Connections of Heavy Engineering Objects. Lecture Notes in Networks and Systems, 305, 2022: 69-77.
https://doi.org/10.1007/978-3-030-83368-8_7
[22] B. Kim, J. Huang, J.-Y. Yoon, Design optimization of OCTG premium connection system based on the effect of stabbing flank angle. Journal of Mechanical Science and Technology, 35, 2021: 545-561. https://doi.org/10.1007/s12206-021-0114-2
[23] I. Grinevich, N. Mozga, The Detection of Nut Driver’s Optimal Working Regimes Taking into Account Power Consumption and Assembly Time during Fixed Threaded Joints Assembly. Solid State Phenomena, 198, 201: 681-685. https://doi.org/10.4028/www.scientific.net/ssp.198.681
[24] I.A. Birger, G.B. Iosilevich, Threaded and flange joints. Mechanical Engineering Publishing, Moscow, Russia, 1990. (in Russian)
[25] N.V. Vodolazskaya, Modeling of the process of assessing the probabilities of collecting a threaded pair under various orientation schemes. Journal of Advanced Research in Technical Science, (15), 2019: 31-34. https://doi.org/10.26160/2474-5901-2019-15-31-34
[26] A.N. Drozdov, Engineering of impulse mechanism for mechanical hander power tools. IOP Conference Series: Materials Science and Engineering, 317(1), 2018: 012034. https://doi.org/10.1088/1757-899Х/317/1/012034
[27] B.M. Bazrov, T.M. Gaynutdinov, Factors influencing the choice of technological bases in the manufacture of parts. Mechanical Engineering Bulletin, (1), 2020: 48-51.
[28] A.N. Drozdov, Theoretical and empirical methods of estimating energy and force characteristics of impact wrenches. E3S Web of Conferences, 97, 2019: 05028. https://doi.org/10.1051/e3sconf/20199705028
[29] O.V. Filipovich, Simulation model of the selective assembly of three elements with sorting by estimated values. Assembly in Mechanical Engineering and Instrumentation Engineering, (1), 2022. 14-17. (in Russian)
[30] D. Croccolo, M. De Agostinis, S. Fini, M. Mele, G. Olmi, Effect of different underhead shot-peening and lubrication conditions on high-strength screws undergoing multiple tightenings. Tribology International, 188, 2023: 108874.
https://doi.org/10.1016/j.triboint.2023.108874
[31] D. Croccolo, M. De Agostinis, S. Fini, M. Mele, G. Olmi, C. Scapecchi, N. Vincenzi, Tribological Behaviour in the Underhead for High Strength Socket-Head Screws Coupled With Cast Iron and Tightened in Dry and Lubricated Condition. Conferences Proceedings “Pressure Vessels & Piping Conference”, 16-21 July 2023, Atlanta, Georgia, USA, PVP2023-106237, V002T02A023. https://doi.org/10.1115/PVP2023-106237
[32] R. Blümel, A. Raatz, Towards Early Damage Detection during the Disassembly of Threaded Fasteners using Machine Learning. Procedia CIRP, 116, 2023: 480-485. https://doi.org/10.1016/j.procir.2023.02.081
[33] A.S. Ivanov, M.S. Kuts, S.V. Murkin, Relation between the Tightening Force and the External Load on a Screw in a Threaded Joint. Russian Engineering Research, 42, 2022: 316-322. https://doi.org/10.3103/S1068798X22040141
[34] X. Yan, Z. Liu, M. Zheng, Y. Li, Y. Wang, W. Chen, Preload Control Method of Threaded Fasteners: A Review. Chinese Journal of Mechanical Engineering, 37, 2024: 97. https://doi.org/10.1186/s10033-024-01082-w
[35] M.E. Uz, E. Ozkat, M.C. Ersoy, N. Salvan, Examining the effect of threaded bolt fasteners on steel construction. Scientific Reports, 14, 2024: 16355. https://doi.org/10.1038/s41598-024-67428-5
[36] A.S. Ivanov, S.V. Murkin, E.S. Novikov, Effect of a Locknut on Load Distribution along the Threads of the Screw of a Tightened Threaded Connection. Russian Engineering Research, 44, 2024: 630-634.
https://doi.org/10.3103/S1068798X24700734
[37] N.L. Pedersen, Optimal design of prestressed bolt thread. Journal of Strain Analysis for Engineering Design, 59(4), 2024: 281-290. https://doi.org/10.1177/03093247241232859
[38] S. Yu, L. Yi, L. Xiaoyu, Z. Chunyan, Study on the Simulation Method of Impact Transmission Characteristics of Threaded Connection Interface of Fuze System Beijing Ligong Daxue Xuebao. Transaction of Beijing Institute of Technology, 44(2), 2024: 135-145. https://doi.org/10.15918/j.tbit1001-0645.2023.058
[39] Yu. Z. Zhitnikov, B. Yu. Zhitnikov, D.S. Vorkuev, Multi-spindle wrench of increased accuracy based on differential mechanisms, freewheeling mechanisms, limit moment couplings with switching of rotation of connections. Assembly in mechanical engineering, Instrument Making, (4), 2013: 8-11. (in Russian)
[40] X. Liu, G.Jiao, C. Yang, J. Chen, Q. Cheng, W. Li, S. Liu, Designing a Novel Threaded Connection Pair with an Improved Vibration Resistance. Lecture Notes in Mechanical Engineering, 2024: 1625-1635. https://doi.org/10.1007/978-981-99-8048-2_108
[41] N.V. Vodolazskaya, Theoretical foundations for choosing tooling parameters for the assembly process. Assembly in Mechanical Engineering and Instrumentation Engineering, (5), 2021: 198-200. (in Russian)
[42] L. Yu. Rudneva, T.A. Pankratova, Improving the quality of manufacturing and assembly control of precision mechanics units. Assembly in Mechanical Engineering and Instrumentation Engineering, (2), 2022: 62-64. (in Russian)
© 2024 by the author. This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0)
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How to Cite
N. Vodolazskaya, Process Modeling of Increasing Reliability of Assembly Responsible Connections. Advanced Engineering Letters, 3(3), 2024: 91-99.
https://doi.org/10.46793/adeletters.2024.3.3.1
More Citation Formats
Vodolazskaya, N. (2024). Process Modeling of Increasing Reliability of Assembly Responsible Connections. Advanced Engineering Letters, 3(3), 91-99.
https://doi.org/10.46793/adeletters.2024.3.3.1
Vodolazskaya, Nataliia, “Process Modeling of Increasing Reliability of Assembly Responsible Connections.“ Advanced Engineering Letters, vol. 3, no. 3, 2024, pp. 91-99.
https://doi.org/10.46793/adeletters.2024.3.3.1
Vodolazskaya, Nataliia, 2024. “Process Modeling of Increasing Reliability of Assembly Responsible Connections.“ Advanced Engineering Letters, 3 (3): 91-99.
https://doi.org/10.46793/adeletters.2024.3.3.1
Vodolazskaya, N. (2024). Process Modeling of Increasing Reliability of Assembly Responsible Connections. Advanced Engineering Letters, 3(3), pp. 91-99.
doi: 10.46793/adeletters.2024.3.3.1.
